亚洲av永久综合在线观看尤物,国产欧美日韩精品?在线看,国产精品综合久久久久久久免费,精品无码av不卡一区二区三区,日韩中文字幕一区二区三区,欧美日韩一区二区三区视频播放,欧美日韩国产高清中文,中文字幕自拍欧美

2024

2024

  • Record 493 of

    Title:Output Facet Temperature of High-Power Semiconductor Lasers Using Optical-Thermal Reflection Method
    Author Full Names:Xu, Zibang(1,2,3); Miao, Xinlian(1,2,3); Liu, Yuxian(4); Lan, Yu(4); Zhao, Yuliang(4); Zhang, Xiang(1,2,3); Yang, Guowen(5); Yuan, Xiao(1,2,3)
    Source Title:Zhongguo Jiguang/Chinese Journal of Lasers
    Language:Chinese
    Document Type:Journal article (JA)
    Abstract:Objective Semiconductor lasers have been widely used in industrial, medical, and other fields owing to their high electro-optical conversion efficiency, wide spectrum, and high power-to-volume ratio characteristics. However, as the application field expanded, higher power and reliability requirements have been stated. When manufacturing a high-power semiconductor laser, catastrophic optical mirror damage (COMD) is a key factor limiting the output power and reliability characteristics. COMD occurs due to a local temperature rise at the facet, which exceeds the material damage threshold, and it denotes the irreversible physical damage inflicted on the facet. Note that the occurrence of COMD is closely related to the output facet temperature; thus, accurately measuring the temperature and plotting its distribution are crucial for assessing the failure characteristics of high-power semiconductor lasers. Methods This study is based on the optical thermal reflection method used to construct a semiconductor laser output surface temperature measurement system. Accordingly, the distribution characteristics of the output surface temperature are studied. First, the thermal reflection coefficient of the output facet material used in the semiconductor laser is measured, based on which the measurement system is calibrated. Second, the lock-in method is used to improve the signal-to-noise ratio of the measurement system by increasing the number of image acquisitions. Finally, the output facet temperatures are measured under different operating currents, and the temperature information along the fast and slow axes is extracted and analyzed. Results and Discussions The thermal reflection coefficient of the active region is 5.06 × 10-4 [Fig. 3(a)], and that of the substrate is 6.03 × 10-4 [Fig. 3(b)]. After 1000 iterations, the amplitude fluctuation of the thermal reflection signal tends to a smooth curve, causing a temperature fluctuation of less than 0.4 °C (Fig. 6). The output facet temperature under the 1-10 A current is measured; the output facet temperature of the active region of the semiconductor laser increases with an increase in the injection current (Fig. 8). The output facet temperature of the quantum well layer exhibits strong non-uniformity along the slow axis. At 10 A, the maximum temperature difference at the output facet is approximately 7.5 °C. However, at 1 A, the maximum difference exceeds 3 °C (Fig. 9). The output facet temperatures of the quantum well region under currents of 2, 4, 6, 8, and 10 A are 1.4, 3.1, 4.6, 6.9, and 8.7 °C higher than the junction temperature, respectively. In the region with an approximate thickness of 1.3 pun at both sides of the quantum well, the output facet temperature is higher than the junction temperature. However, in other regions, the output facet temperature is lower than the junction temperature (Fig. 11). Conclusions This article presents a study on the high-resolution measurement of the temperature distribution at the semiconductor laser output facet using the optical thermal reflection method. The temperature distribution information from the output facet of the semiconductor laser is collected under working currents of 1-10 A. The results indicate that the measurement method presented in this study can distinguish small temperature variations at the output facet of the semiconductor laser. Moreover, it is observed that the temperature distribution at the output facet of the semiconductor laser exhibits strong non-uniformity along the slow axis, primarily due to heat generation from light absorption and non-radiative recombination occurring at the facet defects. The highest temperature is observed near the quantum well layer at the output facet, which is consistent with the fact that COMD usually occurs in this region, indicating that abnormal temperatures exceeding the damage threshold are the direct cause of COMD failure in semiconductor lasers. The research method and results presented in this study contribute to obtaining a better understanding of the heat generation mechanism at the output facet of semiconductor lasers, which hold significant practical value for optimizing their design for improving their output performance and reliability. ? 2024 Science Press. All rights reserved.
    Affiliations:(1) School of Optoelectronic Science and Engineering, Soochow University, Jiangsu, Suzhou; 215006, China; (2) Key Lab of Advanced Optical Manufacturing Technologies of Jiangsu Province, Jiangsu, Suzhou; 215006, China; (3) Key Lab of Modern Optical Technologies of Education Ministry of China, Jiangsu, Suzhou; 215006, China; (4) State Key Laboratory of Transient Optics and Photonics, Xi'an Institute of Optics and Precision Mechanics, Chinese Academy of Sciences, Shaanxi, Xi'an; 710119, China; (5) Dogain Optoelectronic Technology (Suzhou) Co., Ltd., Jiangsu, Suzhou; 215000, China
    Publication Year:2024
    Volume:51
    Issue:13
    Article Number:1301004
    DOI Link:10.3788/CJL231574
    數(shù)據(jù)庫(kù)ID(收錄號(hào)):20243216840207
  • Record 494 of

    Title:Cold shield matching of cooled infrared system based on telecentric optical structure
    Author Full Names:Hu, Xinrong(1); Wang, Jing(1); Chen, Su(1); Li, Jing(2); Feng, Ye(2)
    Source Title:Proceedings of SPIE - The International Society for Optical Engineering
    Language:English
    Document Type:Conference article (CA)
    Conference Title:2023 Advanced Fiber Laser Conference, AFL 2023
    Conference Date:November 10, 2023 - November 12, 2023
    Conference Location:Shenzhen, China
    Conference Sponsor:Chinese Society for Optical Engineering
    Abstract:To solve the problem of cold shield matching in a cooled infrared (IR) imaging optical system with aperture stop placed away from the lens, a pupil matching method based on the telecentric optical structure is proposed. The formulae of Gaussian parameters between the relay lens and the objective lens are derived by using the ideal imaging process. A specific discussion and numerical analysis are carried out. The objective lens is designed as image-space telecentric and the relay lens is designed as object-space telecentric to achieve the requirement that the aperture stop far away from the objective lens. And a specific designing example is added to show the effectiveness of the analysis. ? COPYRIGHT SPIE. Downloading of the abstract is permitted for personal use only.
    Affiliations:(1) China Academy of Space Technology (Xi'an), Xi'an; 710000, China; (2) Xi'an Institute of Optics and Precision Mechanics, Chinese Academy of Sciences, Xi'an; 710119, China
    Publication Year:2024
    Volume:13104
    Article Number:131046Y
    DOI Link:10.1117/12.3023902
    數(shù)據(jù)庫(kù)ID(收錄號(hào)):20241816027603
  • Record 495 of

    Title:A 4×112Gbps Compact Polarization-Insensitive Silicon Photonic WDM Receiver
    Author Full Names:Xue, Jintao(1,2); Wu, Jinyi(1,3); Cheng, Chao(1,3); Zhang, Wenfu(1,2); Wang, Binhao(1,2)
    Source Title:2024 Optical Fiber Communications Conference and Exhibition, OFC 2024 - Proceedings
    Language:English
    Document Type:Conference article (CA)
    Conference Title:2024 Optical Fiber Communications Conference and Exhibition, OFC 2024
    Conference Date:March 24, 2024 - March 28, 2024
    Conference Location:San Diego, CA, United states
    Conference Sponsor:Acacia Communications, Inc.; acphotonics; Amphenol Communications Solutions; ATOP; Aurea Technology; et al.
    Abstract:A 4×112Gbps polarization-insensitive silicon photonic WDM receiver with a two-dimensional grating coupler, cascaded dual-ring filters and bidirectional photodiodes is demonstrated. A polarization-dependent loss of 0.45dB is achieved. ? 2024 OSA.
    Affiliations:(1) Chinese Academy of Sciences, State Key Laboratory of Transient Optics and Photonics, Xi 'An Institute of Optics and Precision Mechanics, Xi'an; 710119, China; (2) University of Chinese Academy of Sciences, School of Future Technology, Beijing; 100049, China; (3) University of Chinese Academy of Sciences, School of Optoelectronics, Beijing; 100049, China
    Publication Year:2024
    數(shù)據(jù)庫(kù)ID(收錄號(hào)):20242216177152
  • Record 496 of

    Title:1.9 μm ultra-narrow spectral width mode-locked pulsed laser based on femtosecond laser inscribed FBG
    Author Full Names:Guo, Xiaoxiao(1); Huang, Xiwei(1); Li, Xiaohui(1); Luo, Pengtao(2); Gao, Cunxiao(3); Wang, Ruohui(2); Wang, Yishan(3); Xi, Fei(4); Yin, Xiaoqiang(5); Zhang, Kai(6)
    Source Title:Optics and Lasers in Engineering
    Language:English
    Document Type:Journal article (JA)
    Abstract:The ultra-narrow spectral width laser with excellent temporal coherence is an important light source for microphysics, space detection, and high-precision measurements. However, less attention seems to be paid to mode-locked pulsed lasers in the ~ 1.9 μm. Due to the narrow bandwidth of femtosecond laser inscribed fiber Bragg gratings (FBG), the thulium-doped fiber laser (TDFL) can generate ultra-narrow spectral width pulse. The central wavelength and 3-dB bandwidth of the output soliton is 1877.938 nm and 0.044 nm. The linewidth of the output pulse reaches 3.7 GHz. To the best of our knowledge, this is the narrowest spectral width in 1.9 μm. Additionally, when the FBG is compressed or stretched, the central wavelength of pulses will be tuned. This work extends the application scope of FBG and provides a new and simple method for realizing an all-fiber mode-locked laser with ultra-narrow spectra width at 1.9 μm. ? 2024
    Affiliations:(1) School of Physics & Information Technology, Shaanxi Normal University, Xi'an; 710062, China; (2) School of Physics, Northwest University, Xi'an; 710127, China; (3) State Key Laboratory of Transient Optics and Photonics, Xi′an Institute of Optics and Precision Mechanics, Chinese Academy of Sciences, Xi′an; 710119, China; (4) Shaanxi Runchenglai Optoelectric Science & Technology Co. Ltd, China; (5) Shenzhen BYD Lithium Battery Company Limited, China; (6) Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, Suzhou; 215123, China
    Publication Year:2024
    Volume:181
    Article Number:108441
    DOI Link:10.1016/j.optlaseng.2024.108441
    數(shù)據(jù)庫(kù)ID(收錄號(hào)):20243016751488
  • Record 497 of

    Title:Rapid and Nanometric-Precision Distance Measurement with Hybrid Comb Lasers
    Author Full Names:Zhi, Jiawen(1); Wang, Zhichuang(2,3); Wu, Hanzhong(1); Little, Brent E.(2); Chu, Sai T.(4); Wang, Panpan(1); Shao, Chenggang(1); Wang, Weiqiang(2,3); Zhang, Wenfu(2,3)
    Source Title:Conference on Lasers and Electro-Optics/Pacific Rim, CLEO-PR 2024 in Proceedings 2024 Conference on Lasers and Electro-Optics Pacific Rim (CLEO-PR)
    Language:English
    Document Type:Conference article (CA)
    Conference Title:2024 Conference on Lasers and Electro-Optics/Pacific Rim, CLEO-PR 2024
    Conference Date:August 4, 2024 - August 8, 2024
    Conference Location:Incheon, Korea, Republic of
    Abstract:We demonstrate a dual-hybrid-comb distance meter with a fully-stabilized microcomb, enabling ultra-rapid and nanometric-precision distance measurement. The precision can reach 3.572 μm at 4.136 μs and 432 nm at 827.2 μs averaging time. ? 2024 The Author(s)
    Affiliations:(1) MOE Key Laboratory of Fundamental Physical Quantities Measurements, Hubei Key Laboratory of Gravitation and Quantum Physics, PGMF and School of Physics, Huazhong University of Science and Technology, Wuhan; 430074, China; (2) State Key Laboratory of Transient Optics and Photonics, Xi'an Institute of Optics and Precision Mechanics, Chinese Academy of Sciences, Xi'an; 710119, China; (3) University of Chinese Academy of Sciences, Beijing; 100049, China; (4) Department of Physics and Materials Science, City University of Hong Kong, Hong Kong
    Publication Year:2024
    數(shù)據(jù)庫(kù)ID(收錄號(hào)):20250517776785
  • Record 498 of

    Title:Research on Rough Road Detection Link Model
    Author Full Names:Yang, Yi(1); Zhang, Leilei(1); Ruan, Chi(2); He, Fengtao(1); Zhao, Zixuan(1); Jiao, Liang(1)
    Source Title:Guangzi Xuebao/Acta Photonica Sinica
    Language:Chinese
    Document Type:Journal article (JA)
    Abstract:Non-contact road surface meteorological detection technologies have emerged as a significant area of development due to their non-destructive impact on the road foundation and the simplicity of installation and maintenance. Typically, these non-contact road surface meteorological detection technologies utilize optical detection methods,and factors such as the roughness of the road surface and the optical angle of incidence significantly influence the system's performance and the accuracy of the meteorological measurements. According to the optical geometric ray method,an improved microfacet model is proposed,which introduces multiple random parameters generated by the reflection of light from rough road surfaces, and establishes a hemispherical equivalent simulation model. This model microscopically elucidates the reflective properties of photons when interacting with rough road surfaces,and it allows for the convenient and precise simulation and analysis of the distribution of photons after reflecting off rough surfaces. Building on this,a rough road surface link transmission model based on wireless laser transmission theory has been developed to study and simulate the optical power characteristics received by the detection system under different road roughness levels and angles of incidence. The random distribution function of the normals of road microfacets under varying degrees of roughness is obtained by using refusal sampling technique,which determines the changes in photon reflection direction, and the distribution state of photons after reflection from the rough surface is statistically analyzed by using the Monte Carlo method,which derived the variations in reflected optical power under different angles of incidence and road roughness conditions. Subsequently,the validity of the model is confirmed. For the experimental design,a non-contact laser-based road surface meteorological condition detection system operating at a wavelength of 850 nm is constructed,which mainly consists of the light source drive circuit with emitting the light power of 50 mW,the laser receiving unit,and the optical system(including an optical antenna,the optical filters,and an optical collimator,etc.). The system is positioned at a vertical height of 2 m from the road surface to be measured,which is capable of not only monitoring road conditions in real time but also validating the photon distribution and optical power variation predicted by the simulation model. The simulation results and experimental data both reveal a trend where the received optical power gradually decreases as the incident angle between the incident light and the road surface normal increases. Notably,at an incidence angle less than 15°,the greater the road surface roughness,the lower the received optical power. Conversely,at angles greater than 15°,the trend reverses—the greater the road surface roughness,the higher the optical power,and this relationship tends to become linear at certain roughness levels. When the incidence angle reaches 60°,the received optical power stabilizes and undergoes minimal further change. Additionally,the experimental results indicate that the signal-to-noise ratio of the received optical signal does not change with the variation of road roughness,but closely correlates with the incident angle. This study presents and validates an equivalent simulation model for the reflection of light from rough road surfaces, and confirms the model's accuracy and feasibility in practical applications through experiments with an actual non-contact road surface meteorological detection system. The findings not only enhance our understanding of road surface reflective properties but also offer practical insights for the optimization of road detection techniques and meteorological condition monitoring. Thus,the research provides a theoretical and technical support for further improving road detection technology and monitoring meteorological conditions,ultimately contributing to the advancement of road safety measures. ? 2024 Chinese Optical Society. All rights reserved.
    Affiliations:(1) School of Electronic Engineering, Xi'an University of Posts and Telecommunications, Xi'an; 710121, China; (2) Xi'an Institute of Optics and Precision Mechanics of CAS, Xi'an; 710119, China
    Publication Year:2024
    Volume:53
    Issue:7
    Article Number:0712005
    DOI Link:10.3788/gzxb20245307.0712005
    數(shù)據(jù)庫(kù)ID(收錄號(hào)):20243116788002
  • Record 499 of

    Title:The temperature variation of different cooling methods for the preparation of chalcogenide glasses
    Author Full Names:Fan, Wenwen(1); Xu, Junfeng(1); Yao, Zhirui(1); Li, Na(1); Li, Xuyang(2)
    Source Title:Infrared Physics and Technology
    Language:English
    Document Type:Journal article (JA)
    Abstract:The cooling rate has a great influence on the performance of chalcogenide glass, but it is unclear how much the actual cooling rate changes with different cooling methods. In this study, the infrared thermal imaging technology was employed to observe the temperature change in various cooling methods. The temperature curves and the cooling rates between different cooling methods were analyzed from the infrared images. The results show that at 250 °C, the cooling rates follow the order: water quenching > air compressor cooling > salt bath cooling > air cooling > asbestos wrapping cooling; whereas at 150 °C, the sequence is: water quenching > air compressor cooling > air cooling > asbestos wrapping cooling > salt bath cooling. Then the temperature changes inside the sample was simulated and the result shows that the temperature gradient of water quenching is much greater than that of air cooling method, which is why cracks often appear in the glass prepared by water quenching. Finally, Gex-S(90-x)-Sb10 glass was successfully prepared using the air cooling method and it shows excellent optical properties that can transmit both visible and infrared light. ? 2023 Elsevier B.V.
    Affiliations:(1) School of Materials and Chemical Engineering, Xi'an Technological University, 710021, China; (2) Xi'an Institute of Optics and Precision Machanicas, CAS Shaanxi, Xi'an; 710119, China
    Publication Year:2024
    Volume:136
    Article Number:105083
    DOI Link:10.1016/j.infrared.2023.105083
    數(shù)據(jù)庫(kù)ID(收錄號(hào)):20240115321626
  • Record 500 of

    Title:Generation of chiral optical vortex lattice for controlled aggregation of particles
    Author Full Names:Yang, X.B.(1); Zhang, H.(1); Tang, M.M.(1); Ma, H.X.(2); Tai, Y.P.(1,3,4); Li, X.Z.(1,3,4)
    Source Title:Applied Physics Letters
    Language:English
    Document Type:Journal article (JA)
    Abstract:The chiral light field has attracted great attention owing to its interaction with chiral matter. The generation of chiral light fields with rich structures has become crucial as it can expand application scenarios. Herein, we introduce a chiral optical vortex lattice. As a whole, the optical vortex lattice has a chiral intensity distribution, with each spiral arm having sub-vortices (chiral phase). By using an expansion factor to adjust the involute of a circular lattice, this helical optical vortex lattice can be continuously varied from a circular lattice. The chirality of intensity and phase can be controlled independently. Furthermore, the optical tweezers using the lattice demonstrate the capability of sub-vortices to manipulate particle movement, with the chiral intensity determining the trajectory of particle motion. As the lattice possesses both intensity and phase chirality, it may also find potential applications in tasks such as chiral structure microfabrication. ? 2024 Author(s).
    Affiliations:(1) School of Physics and Engineering, School of Chemistry and Chemical Engineering, Henan University of Science and Technology, Luoyang; 471023, China; (2) Research Center for Frontier Fundamental Studies, Zhejiang Lab, Hangzhou; 311100, China; (3) State Key Laboratory of Transient Optics and Photonics, Xi'an Institute of Optics and Precision Mechanics, Chinese Academy of Sciences, Xi'an; 710119, China; (4) Provincial and Ministerial Co-construction of Collaborative Innovation Center for Non-ferrous Metal New Materials and Advanced Processing Technology, Luoyang; 471023, China
    Publication Year:2024
    Volume:125
    Issue:1
    Article Number:011106
    DOI Link:10.1063/5.0214498
    數(shù)據(jù)庫(kù)ID(收錄號(hào)):20242816677455
  • Record 501 of

    Title:An Infrared Evanescent Wave Sensor for Detection of Ascorbic Acid in Food and Drugs
    Author Full Names:You, Tianxiang(1); Zhao, Yongkun(1); Xu, Yantao(2); Guo, Haitao(2); Zhu, Jihong(3); Tao, Haizheng(1); Zhang, Xianghua(4); Xu, Yinsheng(1)
    Source Title:Journal of Lightwave Technology
    Language:English
    Document Type:Journal article (JA)
    Abstract:An infrared evanescent wave sensor was developed to accurately detect ascorbic acid (vitamin C) in food and drugs. The sensor was fabricated by tapering and bending of As2S3 infrared fibers. Due to the broad transmission range (5000-1500 cm-1) of the infrared fibers, covering the characteristic absorption peak of ascorbic acid (C = O at 1760 cm-1 and C = C at 1690 cm-1), the sensor is capable of accurately identifying and detecting the concentration of ascorbic acid. Experimental results demonstrated that a conically tapered fiber sensor with a waist diameter of 50 μm, waist length of 30 mm, and a radius of 2 mm achieved a maximum sensitivity of 0.1257 (a.u./(mg·ml-1)) and a limit of detection (LoD) of 0.917 mg/ml. Furthermore, the application of this fiber sensor in various vitamin C-containing tablets and juices validated its high accuracy and minimal measurement deviation (as low as 0.19 mg/ml). Compared to traditional detection methods, the sensor not only provides a faster and cost-effective solution to identify the substance but also maintains high accuracy. It offers a new approach to quantitative and qualitative analysis of food and drugs. ? 1983-2012 IEEE.
    Affiliations:(1) Wuhan University of Technology, State Key Laboratory of Silicate Materials for Architectures, Wuhan; 430070, China; (2) Chinese Academy of Sciences (CAS), State Key Laboratory of Transient Optics and Photonics, Xi'an Institute of Optics and Precision Mechanics, Xi'an; 710119, China; (3) Yangtze Optical Fibre and Cable Joint Stock Limited Company (YOFC), State Key Laboratory of Optical Fiber and Cable Manufacture Technology, Wuhan; 430073, China; (4) Institut des Sciences Chimiques de Rennes Umr 6226, Rennes; 35042, France
    Publication Year:2024
    Volume:42
    Issue:9
    Start Page:3494-3500
    DOI Link:10.1109/JLT.2024.3357491
    數(shù)據(jù)庫(kù)ID(收錄號(hào)):20240615489260
  • Record 502 of

    Title:Underwater Blue-green Light Weak Signal Detection Based on Adaptive Stochastic Resonance
    Author Full Names:Zhang, Jianlei(1); Zhang, Juan(1); Zhu, Yunzhou(2); Yao, Xinyu(1); Wu, Qianqian(1); Yang, Yi(1); He, Fengtao(1)
    Source Title:Guangzi Xuebao/Acta Photonica Sinica
    Language:Chinese
    Document Type:Journal article (JA)
    Abstract:The optical signal is easy to be absorbed and scattered during transmission with Underwater Optical Wireless Communication(UWOC)technology,resulting in serious optical power attenuation and further affecting the signal quality. In order to realize long-distance data transmission,it is very important to recognize,enhance and extract weak light signal under low Signal-to-Noise Ratio(SNR). Stochastic resonance produces synergistic effect through nonlinear system,weak driving signal and appropriate amount of noise under certain conditions,which not only improves the output signal-to-noise ratio,but also detects useful signals. However,the current parameter selection of stochastic resonance system depends on artificial setting,which is not flexible enough to give full play to the advantages of stochastic resonance signal detection. In this paper,an adaptive stochastic resonance detection scheme based on multi-strategy fusion particle swarm optimization is proposed by analyzing the characteristics of weak underwater light signals and the conditions of stochastic resonance generation. It solves the problem that traditional particle swarm optimization is easy to fall into local optimization resulting in low convergence accuracy and difficult convergence. By introducing adaptive inertia weights to dynamically adjust the local search ability and global search ability of particles,the convergence speed of the algorithm is accelerated. In the process of particle evolution,neighborhood detection is used to strengthen the detection of local extremum location neighborhood,which makes the search radius of the algorithm larger in the initial stage of evolution,and gradually decreases with the increase of iteration times,which increases the refinement ability of the algorithm. Using Cauchy variation and reverse learning interactive strategy to mutate the optimal solution,the local optimal solution in Particle Swarm Optimization is broken,and the ability of the algorithm to escape from local space is effectively improved. In order to evaluate the feasibility and effectiveness of the proposed algorithm,simulation is carried out under the established UWOC weak signal detection system. Considering the special property of pilot signal,that is,some known data is inserted at the sending end and can be accurately extracted at the receiving end,it can be used as a reliable reference signal for parameter estimation. Therefore,this paper selects a specific number of code elements for parameter optimization. By taking the output SNR of the system as the selection index,the optimal system parameter which makes the output SNR maximum is searched and iterated continuously within the preset algorithm parameter range. The optimal system parameters are substituted into the fourth-order Runge-Kutta equation,the output response is obtained by discretization,and the weak light signal is detected. Finally,the error performance of bipolar non-return-to-zero signal with white Gaussian noise is compared under four detection schemes:non-stochastic resonance,fixed parameter stochastic resonance,adaptive stochastic resonance based on particle swarm optimization algorithm and multi-strategy fusion particle swarm optimization algorithm. The simulation results show that the bit error rate performance of the non-stochastic resonance system is worse than that of the other three detection schemes,and the bit error rate performance of the fixed parameter stochastic resonance system has limitations. Adaptive stochastic resonance can significantly improve the bit error rate performance of the system,especially above -6 dB,and the improvement effect is very obvious. Compared with the adaptive stochastic resonance based on particle swarm optimization algorithm,the proposed algorithm has faster convergence speed, more accurate optimization results and less error performance. In order to verify the effectiveness and feasibility of the proposed method, a UWOC experimental system is established. The experimental results show that when the received signal-to-noise ratio is - 1.7 dB,the bit error rate of the proposed algorithm can reach 2×10-4,and its performance is better than that of NO-SR and F-SR, which once again verifies the effectiveness of the proposed algorithm. ? 2024 Chinese Optical Society. All rights reserved.
    Affiliations:(1) School of Electronic Engineering, Xi'an University of Posts and Telecommunications, Xi'an; 710121, China; (2) Xi'an Institute of Optics and Precision Mechanics, Chinese Academy of Sciences, Xi'an; 710119, China
    Publication Year:2024
    Volume:53
    Issue:3
    Article Number:0301003
    DOI Link:10.3788/gzxb20245303.0301003
    數(shù)據(jù)庫(kù)ID(收錄號(hào)):20241215774978
  • Record 503 of

    Title:Ultrafast laser triggering nanocrystallization inside Nd-doped photo-thermo-refractive glass and its application in Q-switched laser
    Author Full Names:Wang, Xu(1); Li, Guangying(2); Zhang, Guodong(3); Wang, Jiang(3); Zhang, Yunjie(4); Cheng, Guanghua(3)
    Source Title:Optics Express
    Language:English
    Document Type:Journal article (JA)
    Abstract:Photo-thermo-refractive (PTR) glass doped with rare-earth ions has attracted considerable attention due to its excellent linear photosensitivity and laser performance. This study investigates the nonlinear photosensitive nanocrystallization induced by ultrafast laser irradiation in Nd-doped PTR glass. Phase contrast microscopy reveals that both Gaussian and Gaussian-Bessel beams can modulate the refractive index positively or negatively, depending on specific conditions. Notably, Gaussian-Bessel beams can significantly extend the thickness of the laser-modified layer. Optical spectra indicate the formation of silver nanoparticles, with concentration increasing as pulse energy increases. Furthermore, X-ray diffraction and transmission electron microscopy confirm the precipitation of nanocrystals with the composition of NaF following laser irradiation and thermal treatment, consistent with conventional PTR glass. The nonlinear optical characteristics of the treated sample are evaluated and successfully applied in a passive Q-switched laser, exhibiting both gain characteristics and saturable absorption. This study provides an effective strategy for multifunctional integrated on-chip devices that possess high damage thresholds and enhanced stability. ? 2024 Optica Publishing Group under the terms of the Optica Open Access Publishing Agreement.
    Affiliations:(1) School of Science, Xi’an Shiyou University, Xi’an; 710065, China; (2) State Key Laboratory of Transient Optics and Photonics, Xi’an Institute of Optics and Precision Mechanics, Chinese Academy of Sciences, Xi’an; 710119, China; (3) School of Artificial Intelligence, Optics and Electronics, Northwestern Polytechnical University, Xi’an; 710072, China; (4) School of Science, Xi’an Polytechnic University, Xi’an; 710048, China
    Publication Year:2024
    Volume:32
    Issue:22
    Start Page:38931-38941
    DOI Link:10.1364/OE.537472
    數(shù)據(jù)庫(kù)ID(收錄號(hào)):20244317271267
  • Record 504 of

    Title:Efficient generation of broadband photon pairs in shallow-etched lithium niobate nanowaveguides
    Author Full Names:Fang, Xiao-Xu(1,2); Wang, Leiran(3,4); Lu, He(1,2)
    Source Title:Optics Express
    Language:English
    Document Type:Journal article (JA)
    Abstract:We design and fabricate shallow-etched periodically poled lithium niobate waveguides to realize highly efficient broadband spontaneous parametric down-conversion (SPDC) on nanophotonic chips. The shallow-etched waveguide can tolerate the non-uniformities of waveguide width induced by fabrication imperfections, enabling the generation of photon pairs with high count rate and bandwidth. We demonstrate photon-pair generation with a high brightness of 11.7 GHz/mW and bandwidth of 22 THz in a 5.7-mm-long PPLN waveguide. The generated photon pairs exhibit a strong temporal correlation with a coincidence-to-accidental ratio of up to 16262±850. Our results confirm the feasibility of shallow etching in the fabrication of an efficient SPDC device on the platform of lithium niobate on an insulator, and benefit quantum information processing with a broadband photon source. ? 2024 Optica Publishing Group under the terms of the Optica Open Access Publishing Agreement.
    Affiliations:(1) School of Physics, State Key Laboratory of Crystal Materials, Shandong University, Jinan; 250100, China; (2) Shenzhen Research Institute of Shandong University, Shenzhen; 518057, China; (3) State Key Laboratory of Transient Optics and Photonics, Xi’an Institute of Optics and Precision Mechanics, Chinese Academy of Sciences, Xi’an; 710119, China; (4) University of Chinese Academy of Sciences, Beijing; 100049, China
    Publication Year:2024
    Volume:32
    Issue:13
    Start Page:22945-22954
    DOI Link:10.1364/OE.519265
    數(shù)據(jù)庫(kù)ID(收錄號(hào)):20242616354357
五月激情五月丁香| 久久机热这里只有精品| 2015好吊操| 精品99在线| 激情性爱网站| 99伊人性爱在线影院| 婷婷新网址| 色五天综合| 免费精品一区二区三区在线观看| 激情综合五月婷婷| 九九热在线精品| 天堂草在线看www| 中文国产五月天| 激情狠狠丁香月| 日本无va视频| www.思思99热| 激情小说 五月天| 五月天成人手机在线视频| 色婷婷五月天激情久久| 日日干夜夜撸夜夜骑| 深爱 五月天| 97色婷婷| 99久久国产成人精品| 人人色人人摸人人看| 丁香五月激情宗合网| 337p大胆噜噜噜噜噜91Av| 五月天丁香久久| 91九色中文字幕女在线观看| 九九激情综合| 99热这里只有精品21| 日日操夜夜操狠狠操| 丁香六月婷婷综合激情欧美 | 欧美Va日本Va| 天天综合五月天| 五月丁香综合影院| 婷婷色五月丁香六月欧美啪| 国内精品不卡一区二区三区| 色婷婷狠狠久久综合五月 | 久re热视频| 性热视频99精品| 五月天综合激情网| 精品香蕉99久久久久网站| 亚洲激情五月天| 韩国真做片在线观看| 午夜色13| 国产女人十八水真多1| 久久天堂婷婷五月| 亚洲综合久| 亚洲激情亚洲激情 | 婷婷五月天综合在线| 给我免费播放片在线中国| 99视频九九热| 精品人妻伦九区久久AAA片麻豆| 色综合久久久久| 婷婷欧美| 十一月婷婷激情四射| 国产精品国产| 免费无码毛片一区二区A片| 亚洲黄色片一级| 琪琪狠狠干| 色五月婷婷五月天激情综合| 色五月婷婷狠狠撸| 五月婷在线播放| 伊人色综合久久久| 国产传媒精品1区2区3区| 91女人18毛片水多国产| 五月丁香色| 久久99热这里只有精品23| 99亚洲色| 色综合久久久久| 精品国产成人AV在线看| 99热狠狠操| 五月婷婷新网站| 婷婷五月六月丁香综合| 超碰人人超碰| 大香蕉伊人丁香五月| 伊人网啪啪| 激情丁香五月婷| 99av视频| 色婷婷五月综合网| 97久久人人操| 激情 久久 婷婷| 久大香蕉| 五月婷婷丁香色播网| 大香蕉欧美在线| 国自产拍偷拍精品啪啪一区二区| 久热 91| 狠狠狠狠狠干| 综合久久六月| 狠狠另类视频| 亚洲综合草草| 亚洲人成www在线播放| 午夜激情久久| 久久草人妻| 亚洲综合在线丁香五月| 激情久久综合| 久久婷婷五月综合网| 婷婷九月综合| 中文字幕色色色| 99噜噜| 成人va视频| 九九热精品| 日韩av免费版| 日本熟女视频一区二区| 激情综合激情综合| 精品亚洲麻豆1区2区3区| 九色1区视频在线| 九热视频| 综合噜噜| 激情五月天色播| 激情綜合網址| 99热精品6| 人妻中文在线| 婷婷久久婷婷| 久久五月天激情视频| 天天综合色| 亚洲精品国产熟女久久久| 亚洲精品久久久久久久久久吃药| 婷婷激情五月综合| av九九| 99国产性感视频| 色色色综合网| 超碰国产在线观看| 日撸夜撸日操| 亚洲视频一区| 九九操操| 婷婷深爱五月丁香| www.99热| 久久青青日本视频| 亚洲射激情| 996er热| 丁香av网| 色色婷婷综合网| 亚洲人妻AV| 免费观看日韩成人av| 亚洲成人色五月天| 超碰在线成人| 大香蕉75线| 丁香五月天欧美| 日韩成人av在线| 色色丁香婷婷五月天| 亚洲亚洲激情| 91精品综合久久久久久五月丁香| 久久国产成人9999久久久久| 五月婷婷久久综合| 六月综合婷婷开心伊人| av大香蕉| 五月天色播网| 激情五月天丁香| 1024亚洲| 婷婷涩涩五月天| 丰满人妻妇伦又伦精品国产| 色婷婷丁香网| 婷婷在线视频| 大香蕉天堂| 99热免费观看| 91精品国产色猫| 第四色婷婷五月| 婷婷五月天伊人| 啪啪综合| 玖玖在线| 超碰chaompinm| 色婷婷小说网| 久久99日本精品视频免费观看| 久久99视频| 97碰碰视频| 色情五月天导航| 丁香五月,激情五月,深爱五月| AV操逼网| 色吧五月婷婷| 超碰色色综合| 日韩久热| 综合久| 99热天堂| 搡BBBB搡BBB搡| 激情性爱网站| 丁香六月激情综合| 高清国产AV| 丁香五月在线| 久久精品99久久久久久久久| 人人操AV| 国产精品丝| 婷婷六月色| 国产婷婷久久| 北京熟妇搡BBBB搡BBBB| 色偷偷色婷婷| 超碰超碰在线| 天天色天天爽| 国产精品涩涩涩视频网站| 激情婷婷丁香五月天小说| 91成人品| 欧美五月丁香在线| 精品国产AV色一区二区深夜久久| 婷婷色在线| 无码操B| 激情综合网五月在线播放| 久久精品99| 成人丁香五月| 99噜噜噜在线播放| 日日射天天射| 五月丁香综合网| 色播播婷婷| 五月婷婷九九久久| 99热综合在线| 色色综合成人网| 婷婷五月成人| 亚洲九九九九| 香港九九六区八区99| 丁香六月天婷婷开心综合| 久久全意婷婷| 五月亭亭网成人在线视频| 狠狠爱婷婷色| 日本欧美在线| 五月丁香啪啪激情| 91人人妻人人操人人爽| 女主播扒开屁股给粉丝看尿口| 视频一区二区在线| 99热在线看片| 草综合网| 国产欧美熟妇另类久久久| 亚洲色情一区二区三区四区| 亚洲一级 片内射网站在线观看| 777丁香六月青青草婷婷综合久月| 激情综合网五月天| 艾小青av| 婷婷中文字幕网| 色婷婷久久久| 日本激情ⅩXX免费视频| 五月丁香六月激情网站| 天天日天天色| 看婷婷五月天网| 国产精品色情AAAAA片软件| 婷婷五月丁香基| 亚洲无码性爱| 99久久久免费| 99爱最新免费视频在线观看| 97AV人人插人人操| 激情亚洲网| 天天插夜夜爽| 成人av在线网址| 五月激情小说| 天天综合社区| 久久曰曰| 热久久999| 日日夜夜干| 欧美99| 色播五月丁香| 97九色视频| 天堂婷婷五月在线| 亚洲欧美日韩另类| 欧美顶级少妇做爰HD| 狠狠操狠狠干综合| 五月丁香久久综合| 爱超碰性| 久操福利| 操操操操操电影网| 婷婷综合精品| 中文字幕婷婷9月天| 五月天综合在线观看视频| 久久香蕉影院| Www.se.久久| 中文字幕在线免费| 色狠狠色狠狠| 五月停亭六月,六月停亭的英语| 婷婷丁香六月| 狠狠五月激情丁香六月| 天天久久66xxx| 97操碰98| 国产色色视频| 激情五月婷婷五月| 综合逼五月激情婷婷| 伊人久热91| 99re6在线视频精品免费| 精品人妻久久久久| 天天天久久久| 色综合香蕉| 久久这里只有精品8| 天天插天天操| 电影爱拉战争免费观看| www.色九月| 久热在线中文字幕色999舞| 色噜噜狠噜噜视频| 色情五月天首页| 9l视频自拍9l视频自拍九色学生| 99爱精品| 超碰猛烈的性猛交| 99精品无码网站| 熟女激情网| 久久性爱网| 国产99久久久| 婷婷九月丁香| 99色在线观看| Xx色综合| 伊人色综合影院视频| 9久热精品在线视频| 51XX午夜影福利| 五月丁香六月婷婷的女人| 色欲色天天香综合| 嫩草视频观看| 国产jd1024基地手机看国产| 久久精品国产精品| 五月婷婷AV| 五月丁香淫淫婷婷婷| 96人人操人人操人人| 欧美日韩国产伦精品日韩人妻一| 日本欧美成人片AAAA| 婷婷四房播播| 九九热在线视频观看| 婷婷色五月天第7色| 91美女被操| 狠狠色综合无线观看| 国产FREESEXVIDEOS性中国| 99精品一二三四视频| 99r这里| www.夜夜操.con| 情色婷婷五月天| 久久精品日| 国产一区二区av免费| 丁香六月婷婷色XXXXX| 亚洲色无码A片中文字幕| www.色擼擼.com| 伊人五月婷婷| 成人五月天婷婷| 91色噜噜狠狠狠狠色综合| 激情五月婷色| 1024AV视频| 中文字幕按摩做爰| 亚洲精品99| 欧美色色色色色色色| 五月婷婷亚洲色视频| 婷婷香五月综合激情| 丁香六月AV| 五月婷婷性爱| 久久综合激情| 色欲丁香| 亚洲黄网AV| 狠狠精品干练久久久无码中文字幕| 曰日爽日日操| 欧美va欧美va差| 91视屏在线观看com.wwwvv| 丁香五月六月久久综合| 婷婷色网站| AV在线中文| 九九人人精品| 丰满人妻妇伦又伦精品国产| 亚州美女| 成人国产欧美大片一区| 国产精品18久久久| 国产毛片欧美毛片久久久| 天天草天天爽| 狠狠综合网| 99在线精品免费视频| 大香蕉五月天婷婷| 99久久九九| 日韩黄黄| 精品人妻一区二区三区四区不卡在| 九九视频在线观看| 另类视频五月天| 亚洲精品婷婷| 超碰国产在线观看| 97热视频| 激情综合五月婷婷| 国产精品第一国产精品| 久久91精品国产91| 香蕉久久国产AV一区二区| 五月开心播播网| 精品国产成人AV在线看| 日曰躁夜夜躁2026| 嫩草视频。| 精品操逼一区二区| 99热丁香| 97成人丁香婷婷| 爱性综合网| 99精品视频在线6| 伊人五月久久| 久久婷婷五月综合伊人| 婷婷丁香18| 色色国产| 婷婷色网站| 伊人五月天在线| 亚洲第一综合| 丁香激情网| 99视频热99| 久久99免费视频| 91九色欧美| 五月婷婷啪啪网| 激情网战码亚洲A| 五月丁香啪啪拍| 思思re视频在线| 五月丁香婷婷激情视频| 久久精品系列| 嫩BBB搡BBBB榛BBBB| 五月天婷婷激情| 在线综合啪| 天天操天天曰天天射| 九色自拍| 色的色综合| 99热99热不卡| 婷婷五月天情色| 九九久久网| 欧美顶级少妇做爰HD| 日本激情综合| 五月天综合久久丁香91| 丁香五月天激情网址| 久久五月丁香综合17C| 99热这里只有精品在线播放| 六月婷久久| www.色五月| 综合狠久久| 色99在线看| 丁香综合婷婷开心激情网| 狠狠色无码| 婷婷免费视频| 天天色天天| 激情五月婷婷老师| www.91在线观看| 五月丁香婷婷福利| 六月 丁香 视频| 成人色色视频| 五月丁香六月成人| 一区三区三区不卡| 久草a片| 婷婷 久综合| 丁香六月婷婷一区二区三区| 一级黄色影片| 丁香五月激情五月| 五月丁香综合| 伊人综合网站| 四色AVwww| 婷婷天天综合| 天堂久久性| 无码激情AAAAA片-区区| 久婷自拍视频| 99热这里只有精品在线免费| 久热免费| 香蕉久久av一区二区三区| 在线亚洲综合| 玖玖色资源站| 日韩淑女人妻luan伦激情精品一区二 | 久久久久久久11111111111| 99久久精彩视频| 日日日日做夜夜夜夜无码| 色色色9| 国产激情综合五月久久| 日本英国美国欧美亚洲国产精亚洲日韩精品在线观看 | 成人做爰A片免费看网站找不到了| 日韩经典欧美一区二区三区 | 亚洲精品久久久久久久久久飞鱼| wwwss在线观看| 亚洲激情综| 丁香六月爱综合| 香蕉狠狠爱视频| 乱乱av| 日本精品99| 五月停停激情网| 久久五月天综合| 丁香色五月AV在线| 操逼福利视频| 97中文在线| 婷婷五月丁香色色| 日韩99色| 五月天久久婷婷| 婷婷五月日本| 五月天激情婷婷丁香| 91婷婷丁香| 丁香社92视频| WWW.桔色成人.COM| 午夜不卡久久精品无码免费| 亚洲精品久久国产高清情趣| 最新av在线观看| 婷婷丁香五月亚洲综合网在线视频观看| 石榴视频| www.婷婷久久五月天| 激情五婷精品网在线观看网址| 开心综合激情综合| 99热久久这里只有精品| 五月天开心色情网| 五月婷婷六月色| 五月婷婷六月激情| 狠狠色色| 亚洲99综合| 免费看片在线观看| 久热这里只有精品在线| 国产午夜亚洲精品理论片八戒| 久久38视频| w婷婷五月婷婷w| 六月婷婷中文字幕| 婷婷中文无码| 五月丁香激情婷婷| 欧美成人日韩| 亚洲狠狠干| 五月婷婷色色| 天天激情视频| 超碰1999| 就爱日五月天| 99色1| 少妇伦子伦精品无吗| 97碰久久| 色综合久久88色综合天天看| 丁香花婷婷五月天| 婷婷五月激情视频在线| 好吊兆人妻| 五月花婷婷最新| 99精品视频在线观看| 天天开心天天色| 99久久久久久| 91九色在线视频| 五月色丁香| 亚洲AV日韩AV永久无码网站| 激情五月丁香六月婷婷| 天天碰夜夜操| 天天精品视频在线观看视频| 牛牛热这里只有jingpin| 五月天婷婷网站| 99网| 思思99精品视频在线观看| 亚洲色五月天| 99精品热视频只有精品10| 色五月天综合网| 五月天激情四射| 国产91视频| 97久久草草超级碰碰碰| 97碰在线| 噜噜狠狠| 欧美性生交XXXXX无码小说| 丁香五月AV在线| 久久小说| 婷婷丁香水多多视频| 蜜桃精品免费久久久久影院| 婷婷综合五月激情| 国产精品色色| 久久性爰视频这里只有精品| 99精品久久久久久久久| 狠狠做婷婷| 一起草aV| 97人人操| 色综合色| 日本欧美成人片AAAA| 青青热久精品视频在线观看| 国产午夜精华精华精华婷| 久久婷五月综合色| 亚洲日韩操B| 天天爽夜夜爽夜爽精品| 青青久久五月天丁香婷婷| 九九热视频精品| 亚洲无码你懂的| 夜夜干天天操| 五月婷婷六月天| 六月丁香五月天| 人人操Av| 激情五月成年| 5月丁香婷婷激情网| 五月婷婷日| 伊人玖玖精品| 五月天婷五月天综合网小说首页-五月天激激婷婷大综合,婷婷亚洲综合五月天小说 | 五月婷综合| 日本人人干| 九月丁香婷婷| 色插综合网| 超碰在线免费观看日韩| 婷婷五月天在线一区| 91视频免费后入强操| 天天玩夜夜操| www,五月天com| 亚洲精品一区二区午夜无码| 日日夜夜爽| 99热欧美精品| 99在线精品视频在线观看| 色综合久久88色综合天天人守婷| 亚洲视频在线观看| www.ppypp| 色播五月综合网| 伊人五月天在线| 久久 这里只有精品1| 精品无码片| 91干视频| 激情五月综亚网| 韩国97天堂| 色九月婷婷综合| 五月婷婷六月丁香综合视频在线| A片女女女女女女BBBB| 26UUU精品一区二区c〇m| 99啪在线视频| 婷婷五月色播| 久久A V无码视频| 久久性操| 五月天色色色| 97干婷婷| ...婷婷国产成人亚洲日韩| 免费日本aⅴ中文字幕| 婷婷久久亚洲| 精品少妇蜜臀91| 亚洲99在线| 欧美美女视频| 熟女激情五月天| 欧美日韩一a.无| 五月综合激情啪啪啪啪啪| 久热一本| 婷激情五月| 久操大| 激情五月婷婷| 91九色熟女| 99色1| 国产综合婷婷| 婷婷久久久| 97色97干| 五月丁香亚洲综合网| 久久久久久97| 五月丁香六月激情| 婷婷五月天av| 久久机热这里只有| 色婷婷88| 岛国在线观看91| 精品久久9| 五月丁香六月婷综合成人综合| 五月天婷婷丁香人人操91| 人人爽天天爽| 俺去也综合| 婷婷AV丁香| 九九热99熟女| Av狠狠色丁香婷| 久久久久久欧美精品se一二三四| 色五月在线| 久久久久久99精品无码| 中文字幕中文有码在线| 超碰在线成人| 久久婷婷六月综合综合色| 精品一二三区视频立| 99色日本| www.狠狠| 99热这里只有精品5| 丁香婷婷社区| 丁香五月在线观看综合| 久操人妻| 成人国产网站| 免费视频无码| 久久久天堂国产精品女人| 久色大| 亚洲综合在线丁香五月| 激情婷婷五月天。| 激情婷婷九月| 日韩综合成人| 疯狂做受XXXX高潮A片动画| 97亚洲婷婷| 婷婷综合色播网| tingting五月天亚洲| 久99视频在线观看| 99caobi| AV网在线| 国产在线aaa片一区二区99| 美女激情综合| 26uuu成人网| 天天操夜夜肏| 人妻内射麻豆视频| 久久这里这里有精品免费视频| 激情五月天婷婷播播久久综合91| 婷婷六月天天| 色香欲综合| 精品三区影院| mmm1717.6dbm人人爱人人操| 91九色在线| 欧美日韩国产一区二区| 色婷婷成人色网| 亚洲无AV在线中文字幕| 五月色影院| av在线观看网站| 婷婷婷婷婷婷婷婷| 婷婷五月另类网站| 视色综合| 韩国婷婷丁香五月| 99热成人精品| 久久五月天婷婷视频| 欧美色久| 人妻久热| 99狠狠操一| 婷婷综合另类| av电影在线播放| 99热午夜精品| 日韩野外 无套| 这里只有精品96| 日韩欧美三区| 欧美丰满熟妇BBB久久久| 日韩AAAAA| 超碰人人色| 色色五月天婷婷| 日韩黄黄| 成人片在线播放| 99操久久| 99久.| 亚洲熟妇无码乱子AV电影| 天天爱天天做天天操| 五月丁香黄色视频| 丁香五月亚综合图片| 天天摸夜夜夜| 黄色笑话深爱激情网丁香五月婷婷啪啪啪啪啪 | 中国无码av| www免费在线视频| 黄网在线免费观| se色婷婷视频| 欧美十二区| 色99久草在线| 亚洲黄色操逼| 91久久久久| 五月激情综合婷婷| 99热人人操人人操| 亚洲电影中文字幕| 色爱综合五月| 大香蕉人人人| 日韩操逼大片| 91精品丝袜久久久久久| 久久xx| 欧日美女Va| 思思久久精品视频| 99精品在| 亚洲bt丁香五月天婷婷激情小说| 色婷婷国色天香综合| 婷婷五六日| 五月天婷婷影院影院| 狠狠色精品综合| 五月丁香777| www.婷婷| 亚洲在线操| 97色色综合| 人妻丰满精品一区二区A片| 六月色婷婷| 就爱日五月天| 综合九九中文字幕| 99热大香蕉| 99热99在线| 狠狠夜夜五月丁香| 久久婷婷操| 操人妻视频91| 天堂资源中文| 亚洲黄色影视| 极品少妇XXXX精品少妇偷拍| 国产操B| 国产综合丁香五月天| 亚洲午夜电影| j久久性爱视频| 久久99久久99精品免视看婷婷| 国产精品五月丁香| 天天操夜夜肏| 99精品免费| 亚洲AV成人精品日韩在线播放| 99超级碰碰| 日本一级黄色电影| 欧美一区二区在线观看| 亚洲AV日韩AV永久无码网站| 九九狠狠干| 五月天天丁香婷婷在线中| 日本噜噜色网| 丁香五月播播| 91操操| 五月色综合| 久久婷婷六月综合综合| 久热人妻| 中国AV性爱观看| 99热这里只有精| 色五月丁香婷婷| av高清无码| 最新日韩久热免费视频看看| 五月天婷婷av| 青青草日本亚洲| 五月婷婷激情网| 日本三级大片| 五月激情丁香啪啪| av激情在线| 人妻内射麻豆视频| 噜噜网免费视频| www.99在线| 嫩草极品| 色五婷婷| 操逼福利视频| 无套内谢少妇毛片A片樱花| 99热只有| 久久久久视剧HD| 激情婷婷五月天。| 日夜夜久久| 色婷久久| 婷婷碰碰| 久热丁香| 清色五月天| 老熟女重囗味HDXX69| 麻豆AV一区二区三区| 丁香五月九九| 亚洲精99| 人体裸体BBBBB欣赏| 免费视频WWW在线观看网站| 在线一起草av| 婷婷五月激情的图片| 婷婷激情社区| 激情综合五月婷婷| 996热re视频在线观看视频| www.xtbsty.cn.com蜜乳AV| 五月天久久综合婷婷丁香| 永久精品| 国产性爱色| 青青草a在线| 五月婷婷六月天| 欧美一区二区在线观看| 99综合一区| 日韩乱玛久久| 五月激情六月综合| 久久色午夜在线导航| 九九综合视频在线观看| 狠狠狠狠狠干| WWW国产精品人妻一二三区| 91婷婷丁香五月| 久久五月婷天天干| 五月天婷婷操逼视频| 色婷婷中文| 99色在线视频观看| AA丁香综合激情| 六月丁香啪啪| 激情五月天婷婷| 99爱视频在线观看| 色噜噜狠狠色综合日日| 丁香花五月天激情| 青草激情综合| 色婷婷丁香五月天| 亚洲激情四射| 五月丁香影院| 久久九九激情五月天| 99久久66| 五月天婷综合| 丁香婷婷婷| 婷婷伊人激情婷婷| ww久久| 婷婷自拍| 五月丁香基地| 国产av天堂| 婷婷色丁香五月| 激情五月婷婷在线观看| 免费黄网不卡AV| 国产噜一噜天天噜| 91九色熟女| 九九九九九九九九九九九九九国产精品| 九九热中文| 色色亚洲视频| 热99视频精品在线| 五月婷高清视频| 99这里只有精品视频| 九九大香蕉黄色影院| 狠狠干综合网| 丁香五月社区| 俺也去婷婷五月天第五色| 操操天堂| 色综合狠狠色| 九九视频这里只有精品| 亚洲婷婷五月天| 五月天婷婷在线啪啪视频| 五月丁香天堂网| 欧美在线看| 婷婷五月在线观看| 日韩精品无码AV| 丁香婷婷在线| 国产在线激情视频| 五月激情另类| 中文字幕无码人妻少妇免费视频| 2021日韩无码| 色色色色网色色网色色| 五月丁香激情综合| 丁香五月婷婷亚洲色图| 色五月婷婷丁香五月| 欧美大香蕉视频| 成人丁香五月天Av| 成人精品网站在线观看| 九九热这里只有精品在线观看| 亚洲这里只有精品| 日韩成人无码人妻| 成人版视频在线观看| 99久在线精品99re5热视频| 丁香五月另类小说| 天堂美国久久| 欧美婷婷五月| 99色综合久久| 婷婷五月天男人影院色色网| 亚洲婷婷五月天| 五月丁香在线精品| 福利视频合集100(午夜)| 热这里只有精| 日韩精品无码一区二区| www.激情在线| 国产精品A成V人在线播放| 丁香六月婷婷综合激情欧美| 思思热在线精品视频| 99re这里只有精品99| 日本精品99| 91日本在线观看| 久久婷色| www.狠狠| 色色99| 久久五月天合网| 中文字幕免费高清电视剧| 九九99视频精品| 日韩AV片无码一区二区三区不卡| 色五月天激情| 婷婷九月| 婷婷五月激情热播| 日本欧美成人片AAAA| 婷婷六月网| 色婷婷五月综合| 五月丁香六月欧美| 淫视馆av三区| 26uuu最新地址| 人人操人人看97干| 荡乳尤物3pH| 色~性~乱~伦~噜| 五月丁香六月婷婷网| 五月丁香美女| 99亚洲精品色情无码久久| 开心五月天激情| 婷婷五月另类网站| 五月婷婷五月色| 狠狠色噜噜色狠狠狠综合色| 亚洲va999成人A片在线观看| 丁香五月激情棕合| 六月婷婷开心| 日批在线看| 先锋影音男人的天堂AV| 色五月天成人| 激情亚洲婷婷| 五月天成人免费视频| 五月激情婷婷六月丁香| av在线婷婷| 色色射| 五月婷婷色影院| 色五月av| 丁香婷婷五月六月天| 丁香伊人五月色婷婷五十路| 色99色| 影音先锋色色色资源色资源色| 色五月网址| 男人综合网| 丁香五月停停av| 特级毛片绝黄A片免费播冫| 99ri国产| 狠狠色色| 深爱激情五月网| www.五月婷婷久久.com| 精品香蕉99久久久久网站 | 婷婷亚洲色| 亚洲无码yw| 夜夜干夜夜操| 色五月婷婷丁香婷婷| 加勒比久热| AV九九| 狠狠狠狠狠狠狠狠草| 亚洲精级| 久久婷婷亚洲| 狠狠狠人妻| 9 1 A v久久久| 超碰人人射| 99秘 在线| 成人在线视频男人的天堂4399| 婷婷五月激情小说| 色综合中文色综合网| 99精品偷自拍| 五月天婷婷在线播放| www99精品| 久久久av久av久片一区二区| 无码99| 五月天婷综合网站| 6 9式性爱视频在线播放| 婷色五月天| 夜夜骑日日夜夜| 色色丁香五月天社区| 婷婷五月天小说| 色女伊人| 五月丁香综合激情| 伊人婷婷99热精品| 99久久精品国产色欲| 思思网站| 六月综合婷婷开心伊人 | 亚洲激情无码久久| 97超碰99热99| 涩涩涩五月天| 久久丁香久久| 99热这里是精品| 超碰婷婷五月| 日本色色色| 99色在线观看| 婷婷精品在线| 伊人久久婷婷五月综合97色| 久久性操| 丁香五月综合在线观看| 色婷婷久久| 久草五月丁香婷婷综合| 天天色天天操天天射| 五月亚洲| www.婷婷网| www,com,五月色色| 欧美一级色| 91人操| 久热播这里只有精品| 激情AV| 婷婷狠狠爱| 亚洲精品久久无码AV片麻豆| 五月天伊人久久久久| 99精品在| 九月婷婷综合| 五月婷婷,六月婷婷| 国产在线aaa片一区二区99| 亚洲综合另类| 丁香五月六月激情| 狼人久草| 免费在线a| 亚洲天堂免费看| 中文字幕激情综合| 新激情五月天色播| 九九色综合| 99热99在线精品| 午夜国产免费视频亚洲| 亚洲中文字幕av| 欧美激情综合五月色丁香| 99久久这里只有精品免费官网| www.91AV.com| 欧美美女一区二区三区| 丁香五月另类色婷婷麻豆| 亚洲成人在线五月天| 色色色色色级无码| 五月丁香啪综合| 综合99在线| 99综合视频一体| 久久这里都是精品| 91要啪| 日日干天天爽| 成人婷婷五月| 草操AV在线| 99热青青草| 中文字幕+中文在线| 色婷婷中文| 国产精品久久久久久亚洲毛片 | 裸体做A爰片毛片A片免费| 91九色视频在线观看| 色色哒五月婷婷六月丁香| 激情五月婷婷欧美极品| 五月天婷婷av| 超级碰碰碰碰视频| 九九激情| 69凹凸成人综合网| 成人做爰A片免费看视频| 色五月激情网| 97色啪| 五月婷婷av| 婷婷五月综合激情免费视频| 丁香久色| 人妻av在线| 色碰碰| 99热色婷婷| 免费看片操逼| 91干99| 色九九综合色| 狠狠干综合| 久久精品A片777777| 五月丁香成人网| 中文字幕AV在线| 婷婷 伊人 久久| 亚洲精品V天堂中文字幕| 婷婷丁香五月综合网上 | 婷婷五月天综合久久| 人人草碰| 91啦丨九色丨刺激中文| 色色五月婷婷网| 久久久99精品免费观看| 亚洲亚洲人成综合网络| 97色色色色色| 丁香六月婷婷久久综合| 色婷婷9| 天天综合五月天| 激情五月婷婷| 99这里有精品视频| 亚洲VA口| 天天色噜| 久草热在线视频| 色五月 五月婷婷| 日日噜狠狠色综合久| 五月天开心激情综合网| 婷婷色色欧美| 久久激情五月天| 夜夜爽天天干| www五月天com| 天天摸夜夜夜| 丁香五月天在线观看| 天天干 夜夜爽| 五月婷婷亚洲色视频| 亚洲综合激情五月久久| 99久久6| 色婷婷六月天| 五月天婷婷AV| 丁香婷婷五月天激情四射| 99自拍视频网站| 五月综合激情| 9+1视频网址| 五月婷激情| 99精品偷自拍| 超碰av在线| 亚洲色色色| 影音先锋美国A| 日韩在线视频9色| 亚洲激情六月丁香| 五月婷综合激情| 综合激情五月婷婷| 日韩久久视频| 97久久人人| 99热无码精品| 五月天综合区|