• <tr id="yyy80"></tr>
  • <sup id="yyy80"></sup>
  • <tfoot id="yyy80"><noscript id="yyy80"></noscript></tfoot>
  • 99热精品在线国产_美女午夜性视频免费_国产精品国产高清国产av_av欧美777_自拍偷自拍亚洲精品老妇_亚洲熟女精品中文字幕_www日本黄色视频网_国产精品野战在线观看 ?

    Electric-field induced fluctuations in laser generated plasma plume

    2021-04-22 05:34:34
    Plasma Science and Technology 2021年4期

    National Centre for Physics,Quaid-i-Azam University Campus,45320 Islamabad,Pakistan

    Abstract The effect of an external electric field on laser-generated plasma has been studied.It is observed that the laser-generated plasma can be used for the ignition of a spark in the presence of a low voltage external electric field.An eight-fold emission intensity enhancement in Cu I spectral lines are measured as compared to the signal intensity in the absence of an external electric field.The plasma parameters remain the same initially,up to a few microseconds after the generation of plasma,and this feature makes it more interesting for the quantitative analysis of any sample using laser induced breakdown spectroscopy(LIBS).In the presence of an external electric field,fluctuations(contraction and expansion)in the laser-generated plasma are observed which increase the plasma decay time and consequently result in enhanced signal intensity.

    Keywords:LIBS,laser produced plasma,effect of external electric,plasma parameters

    1.Introduction

    Laser-induced breakdown spectroscopy(LIBS),or laserinduced plasma spectroscopy(LIPS),is an emerging technique for the elemental analysis of materials including solid,gases,and liquids[1-3].In this technique,the real-time elemental composition of any sample can be determined in situ,without any sample preparation.Potential applications of LIBS are in the field of space exploration[4,5],environmental monitoring[6,7],biomedical detection[8],industry[9,10],and geotechnical studies[11,12].In this technique,the plasma is generated by focusing a high-power laser beam on the surface of any target.The laser-generated plasma plume expands perpendicularly to the surface of the target,however,it cools down in a few microseconds.The emission spectrum of the plume is registered after a few microseconds of the plasma generation using a spectrograph equipped with a time-integrated or time-resolved setup.The transient nature of the plasma plume,and a very small amount of the ablated material,constrict the limit of detection(LOD)of LIBS as compared to other analytical techniques[13].Several attempts have been made to increase the limit of detection of LIBS for the measurement of trace elements[14].The signal intensity enhancement has been measured by applying radiofrequency and microwave radiation to the laser-generated plasma plume[15,16].A dual pulse LIBS setup has also been used to achieve the signal intensity enhancement[17-19].Ahmed and Baig[20]reported that the optimized value of the inter-pulse delay between the two laser pulses can result in 10-50 times the signal intensity enhancement in the dual pulse configuration.Further studies of dual pulse LIBS revealed that the optimized value of the laser pulse energies ratio can improve the signal intensity enhancement factor by up to 300 times as compared to single pulse LIBS[21].The signal intensity enhancement has also been measured by multiple laser pulse excitation of laser-generated plasma[22].Li et al[23]used the resonant frequency excitation technique to increase the LOD of the trace elements in laser-generated plasmas.

    For the commercialization of LIBS as an analytical technique,the LOD needs to be improved.The effects of electric and magnetic fields in laser-produced plasmas have also been reported[24,25].It has been inferred that reexcitation of the laser-generated plasma by a high voltage discharge can increase the signal intensity which results in increasing the signal-to-noise ratio as well as the LOD of LIBS[26].In spark-discharge-assisted LIBS,Nassef and Ali[27]observed that the signal intensity enhancement factor increases as the spark discharge voltage increases.Further,the plasma temperature remains the same in the spark-dischargeassisted LIBS and in the conventional LIBS.The effect of the static electric field on the laser-generated plasma[28]showed signal intensity enhancement along with a small decrease in the electron number density,while the plasma temperature remains the same.In a recent article[29],a low voltage and high current arc discharge technique,coupled with LIBS,yields an increased persistence time of the plasma plume,along with the signal intensity enhancement.

    In this work,the effect of external electric field in the laser-generated plasma has been studied.The fluctuations in the laser-generated plasma plume are observed in the presence of external electric field(E).The signal intensity enhancement in the emission spectrum of Cu and a slight increase in the plasma temperature and electron number density have been observed.The experimental detail has been presented in section 2,while all the experimental results are discussed in section 3.

    2.Experimental details

    The details of the experimental apparatus used in the present study have already been described in our recent articles[30,31].A high-power pulsed Nd:YAG laser(Quantel,Brilliant B)emitting a full energy of 400 mJ at 532 nm,with a repetition rate of 10 Hz with the pulse duration of 5 ns,was used to generate the plasma.The flash lamp to Q-switch delay has been used for the variation of the laser pulse energy and an energy meter(NOVA-QTL)was used to measure the output pulse energy of the Nd:YAG laser.The second harmonic of the Nd:YAG laser@532 nm,with a pulse energy of 100 mJ,is used and focused on the pure Cu target surface with a quartz lens of focal length 10 cm.To avoid the air breakdown in front of the target surface,the distance between the sample and lens remained less than 10 cm.An optical fiber with a collimating lens has been used for collecting the light from the laser-generated plasma.The collected light from the plasma plume was sent to the spectrometer via optical fiber.The optical fiber was coupled with the high resolution spectrometer(Avantes)which is equipped with a 10 μm slit width and covers the wavelength range from 250 nm to 875 nm.This spectrometer has a 3648-element linear CCD array with the optical resolution of≈0.06 nm at 400 nm.To apply the external electric field,two Al electrodes separated by about 3 mm were placed just above the surface of the sample and electric field was applied across the lasergenerated plasma plume by a DC regulated power supply(Kenwood; PS 350).Both the width and the length of the electrodes are 10 mm.The insulation between the Cu target and electrode was also ensured in order to apply the appropriate voltage.The separation between the closest edge of the electrodes and the target surface is≈250 μm.To measure the current,a resistor has been added in the circuit and the potential drop across the resistor was monitored by oscilloscope.To register the emission spectrum of the laser-generated plasma plume,the Q-switched Nd:YAG laser has been synchronized with the spectrometer through a delay generator(SRS DG 535).The delay between the data acquisition system and the laser pulse was also controlled through the delay generator.The minimum integration time of the spectrometer is 10 μs.To check the reproducibility of the data,the experiment has been repeated at least three times in all cases.The registered emission spectrum has been corrected by subtracting the background signal of the detector using software(AvaSoft).

    Figure 1.A portion of the emission spectrum measured without external electric field at different time delays between the laser pulse and the data acquisition time.

    3.Results and discussion

    To register the emission spectrum of Cu,the laser beam was focused on the surface of the sample and the emission spectrum was registered by the spectrometer.The emission spectra include all the major lines of Cu I at 324 nm,327 nm,510.55 nm,515.32 nm,521.82 nm,570.02 nm,578.21 nm.A small portion of the copper emission spectrum is presented in figure 1.A series of emission spectra were registered at different values of time delay between the data acquisition and laser pulse.In figure 2 the intensities of the Cu I lines at 510.55 nm,515.32 nm,521.82 nm,570.02 nm,578.21 nm are plotted as a function of the delay between the laser pulse and the data acquisition system.It is evident from the figure that the line intensities decrease as the plasma plume expands/cools down.

    To study the effect of external electric field on the lasergenerated plasma,two aluminum electrodes separated by 3 mm were placed perpendicular to the direction of plasma plume expansion.A 20 V mm?1electric field was applied across the laser-generated plasma plume and the emission spectra have been registered.The electric field across the laser-generated plasma plume was increased,step by step,by increasing the applied voltage and keeping the separation of the electrodes(3 mm)constant.A series of spectra were registered at different electric fields.As the external electric filed reaches 49 V mm?1,an abrupt increase in the line intensities was observed; the line profiles of the strong Cu lines show saturation.In figure 3,the intensities of the Cu I lines at 510.55 nm,515.32 nm,521.82 nm,570.02 nm,578.21 nm are plotted as a function of the external electric field.It is quite evident from figure 3 that the threshold for the laser-ignited spark is 49 V mm?1.As the electric field was increased beyond the threshold value,no major change in the intensities of the spectral lines was observed.

    Figure 2.The variation of signal intensities of Cu I spectral lines with the time delay between the laser pulse and data acquisition time.

    Figure 3.Effect of external electric field on the signal intensity of Cu I lines.

    Figure 4.In the presence of external electric field,the variation of the signal intensities of Cu I spectral lines with the time delay between the laser pulse and data acquisition time.

    Figure 5.Comparison of the signal intensity with and without external electric field.

    The temporal evolution of the laser-generated plasma in the presence of an external electrical field was also studied.The external electric field(49 V mm?1)was applied and the emission spectrum was registered at different time delays between the laser pulse and the data acquisition system.Figure 4 shows the temporal dependence of the spectral line intensities of Cu I at 510.55 nm,515.32 nm,521.82 nm,570.02 nm,578.21 nm in the presence of the external electric field.At the initial values of the delay times between the laser pulse and the data acquisition system,the intensities of the Cu I lines at 510.55 nm,515.32 nm,521.82 nm are very high and the line shapes are fully saturated due to the signal intensity enhancement induced by the laser-generated spark in the presence of the electric field.Therefore,it is not feasible to use these lines(Cu I 510.55 nm,515.32 nm,521.82 nm)to extract any useful information.A comparison of the spectral line intensities of Cu I 570.02 nm,578.21 nm,measured with the external electric field(49 V mm?1)and without the external electric field,is shown in figure 5,which reveals an eight-fold signal intensity enhancement in the Cu I line at 570.02 nm in the presence of the external electric field.The signal intensity enhancement measured in the presence of the external electric field is in good agreement with earlier reports[28,29].As the distance between the electrodes is only 3 mm,it will be hard to ignore the contribution of cavity confinement effects[32].But the emission intensity has been measured in the presence of electrodes in both cases(with and without E-field),therefore the spatial confinement of the plasma is not contributing to the calculation of intensity enhancement factor.The variation in the signal intensity of the Cu I line at 578.21 nm,as a function of the delay between the laser pulse and the data acquisition,is shown in figure 6.An exponential decay function was fitted to the experimental data points.In both cases,with and without the external electric field,the signal intensity of the Cu I 578.21 nm line decays exponentially with delay time,but with different decay rates(t).In the presence of the external electric field,the signal intensity of the Cu I 578.21 nm line decays slowly as compared to the signal intensity measured without the external electric field.

    Figure 6.Variation in the signal intensity of Cu I line at 578.21 nm with the time delay between the laser pulse and data acquisition time,with and without external electric field.

    Figure 7.Variations in electron temperature with the time delay between the laser pulse and data acquisition time.

    The plasma parameters are essentially required for the quantitative analysis of any sample by LIBS.The plasma temperature has been estimated using the well-known Boltzmann plot method[33].The Cu I lines at 510.55 nm,515.32 nm,521.82 nm,570.02 nm,578.21 nm were used in the Boltzmann plot.The variation in the plasma temperature as a function of delay time was estimated using the Boltzmann plot method.The dependence of the plasma temperature on the delay time after the laser pulse,in the presence and absence of the external electric field,is presented in figure 7.In the presence of the external electric field,the plasma temperature was not calculated for the first 20 μs because the signal intensities of the Cu I lines at 510.55 nm,515.32 nm,521.82 nm are saturated(see figure 4),and as the time delay increases,the saturation effect in the line intensities decreases,and the plasma temperature attains the actual value.After 20 μs,the plasma temperature decreases exponentially which is attributed to the plasma expansion.However,we were unable to find the correct plasma temperature in the initial delay time of 20 μs due to limitations in the experimental setup or the saturation of major spectral lines.

    Figure 8.Variations in electron number density with time delay between the laser pulse and data acquisition time.

    The electron number density has been estimated using the full width at half maximum(FWHM)of the Stark broadened line profile at 570.02 nm Cu I line.The time resolved spectra were calculated from the time integrated spectra,according to the method reported by Grifoni et al[34].A series of spectra were registered at different values of time delay between laser shots and spectrometer.The time resolved spectra have been used for estimating the electron number density.The variation in the electron density has been calculated using the time resolved emission spectrum registered after different values of delay after laser pulse.The variation in the electron density with the delay time after laser pulse has been presented in figure 8.In the initial delay time of 20 μs,in the presence of the external electric field,the electron density remains almost the same but decreases exponentially in the absence of electric field.The behavior of an identical electron density for the initial delay of 20 μs may lead towards the plasma temperature in the same time domain(see figure 7).During the expansion of the laser-generated plasma,the decay of electron density and plasma temperature may follow the same trend.Therefore,it is expected that the electron density and plasma temperature may follow the same trend of decay during the expansion of laser-generated plasma plume.In the presence of electric field,it can be assumed that the electron temperature may also remain the same in the initial delay of 20 μs,but it was not estimated due to the saturation of signal intensities.

    The laser-generated plasma can be considered as a hot ionized gas consisting of negatively charged particles(electrons)and positively charged particles(ions).The Lorentz force ‘F’ on the charged particles can be written as

    In the present case,there will be two types of electric fields,one is the internal electric field of the plasma which is responsible for the Stark broadening of the spectral lines,and the other is the external electric field applied by the DC regulated power supply.Equation(1)can be modified as:

    For the sake of simplicity,equation(2)can be written in three components:

    Here,F1=eEint,F2=eEextandF3=e(V′B).

    In the presence of an electric field,it exerts force on the charged particles produced by the laser-generated plasma.The direction of the force on the positively and negatively charged particles will be opposite,which causes plasma expansion along the axis of the applied electric field.As the plasma plume expands and reaches the electrodes,conduction starts,a high current begins to flow and the externally-applied voltage drops,which reduces the magnitude of the external electric field.As the external electric field reduces,the internal electric field exerts a force ‘F1’ on the charged particles of the laser-generated plasma.The direction of F1is opposite to the direction of F2which causes contraction of the laser-generated plasma plume.There is no external magnetic field applied,but due to the flow of the current between the electrodes,a magnetic field will be generated.The force exerted by the magnetic field is F3and it will be perpendicular to the direction of current flowing between the electrodes.Therefore,F3is an instantaneous force and it can influence the charges in the plasma plume as long as current is flowing between the electrodes.In the presence of F3,we may think that charges may follow a spiral path around the line of force of the B field.But due to atmospheric pressure,there will be many collisions of charges before completing the spiral or circular path.At the same time,the electric field(internal/external)will force the charges to move straight along the direction of the E field.Therefore,in the presence of the electric and magnetic forces,the resultant path of the charges between the electrodes can be considered along/opposite of the electric field with some minor effect caused by instantaneous magnetic field.The magnitude of the magnetic force(F3)will be less than the magnitude of the F1or F2; it means that F3will not play a major role in the contraction and expansion(fluctuations)of laser-generated plasma plume but may slightly affect the path trajectories of the charges between the electrodes.The F3force will seize as the contraction of plasma caused by F1and conduction will stop between the electrodes through the plasma plume due to the creation of resistance between the electrodes.As the current stops flowing,the external electric field exerts a force F2again on the charged particle and expansion of the plasma may occur again.In this way a complete cycle of all the forces will be completed again.A schematic expansion of plasma in the presence of external electric field is presented in figure 9.In the meantime,the laser-generated plasma decays also,which decreases the plasma volume between the electrodes.Therefore,a cycle of these forces(F1,F2,F3)will be repeated until the plasma volume decreases to such an extent that it cannot reach or expand to the electrodes due to the force F2.In the other way around,the cycle of these forces(F1,F2,F3)can be started only if the external electric field exerts the F2force in such a way that the plasma expands and touches the electrodes.This means that there will be a threshold force required for the start of these cycles.It is quite obvious from figure 3 that no signal intensity enhancement is observed below the threshold value(49 V mm?1)of the external electric field.To confirm this assertion,the separation between the electrodes was increased to 4 mm and the same strength of electric field(49 V mm?1)was applied between the electrodes.Fortunately,with the separation of electrodes(4 mm),no signal intensity enhancement was observed while the electric field strength remained the same.This means that the threshold electric field required for the signal intensity enhancement has some correlation with the separation of electrodes.In other words,49 V mm?1electric field is not enough to expand the plasma to 4 mm so that it can touch the electrodes and start the current flowing between the electrodes.

    In short,the external electric field will be responsible for the expansion of the plasma plume and the internal electric field will be responsible for the contraction of the plasma plume,while the instantaneous magnetic field may slightly affect the trajectory of the charges between the electrodes.The contraction and expansion of the laser-generated plasma plume will be repeated again and again until the plasma volume decreases below the required value of the threshold for expansion of the plasma plume in the presence of the external electric field.In the presence of the external E-field,the additional excitation/reheating of the laser-generated plasma due to laser-generated sparks can be attributed to the observed emission intensity enhancement.

    To confirm the presented model of plasma fluctuations in the presence of external electric field,the electric current between the electrodes was measured.The time dependent variations of electric current between the electrodes through the laser-generated plasma are presented in figure 10.In the first 10 μs,the electric current between the electrodes oscillates and these oscillations may be attributed to the plasma expansion and contraction.During the period of expansion of the laser-generated plasma,the electric current flows between the electrodes through the laser-generated plasma.The flow of electric current through the laser-generated plasma can reheat/re-ionize the plasma which may increase the plasma’s cooling down time.The observed fluctuations in the current can be due to parasitic capacitance/inductance of the circuit.To resolve this ambiguity,a manual switch was installed between the electrodes and current was measured in the closed/open circuit.The behavior of the current in the open and closed circuit has also been presented in figure 11.It clearly depicts that there are no oscillations in the closed circuit current,which confirms that the observed fluctuation in the current in the presence of laser-generated plasma is real but not due to parasitic capacitance/inductance.Similar oscillations in the discharge current have also been reported by Kexue et al[35].It has been observed that the electron number density remains constant and does not decay in the initial 20 μs of the plasma generation(see figure 8).This means that the natural decay of the electron number density is compensated by the electric current fluctuations through the plasma.A rapid decay of the plasma parameters is problematic for the quantitative analysis of any material by LIBS.In this study,we report that a temporal window for the quantitative analysis of any material can be selected in the initial 20 μs,because the electron number density remains the same during this period.In the presence of electric field,a small increase in the plasma parameters may be attributed to the reheating/re-ionization of the laser-generated plasma by the flow of electric current through the laser-generated plasma plume.

    Figure 9.Schematic diagram of plasma expansion and contraction in the presence of external electric field.

    Figure 10.Variation in the electric current between the electrodes as a function of time delay between the laser pulse and data acquisition time.

    Figure 11.Electric current measured without laser-generated plasma.The circuit was closed/opened using a manual switch between electrodes.

    4.Conclusion

    The effect of a low voltage external electric field on lasergenerated plasma was studied.In the presence of an external electric field,an eight-fold signal intensity enhancement was observed.In addition,a small increase in the plasma parameters was measured.In the presence of an external electric field,the plasma parameters remain the same for a few microseconds after plasma generation,and this feature can be used for a better quantitative analysis of any material by LIBS.The fluctuation in the laser-generated plasma was observed in the presence of an external electric field,which increases the plasma decay time and consequently enhances the signal intensity.

    Acknowledgments

    We are grateful to the Pakistan Academy of Sciences for providing funds to acquire the laser system to perform the relevant experiments,and the National Centre for Physics for the infrastructure development.

    国产成人aa在线观看| 五月天丁香电影| 久久av网站| 免费久久久久久久精品成人欧美视频 | √禁漫天堂资源中文www| 日本91视频免费播放| 成人影院久久| 国产女主播在线喷水免费视频网站| 日日啪夜夜爽| 高清欧美精品videossex| 国产成人免费观看mmmm| 精品亚洲乱码少妇综合久久| 十分钟在线观看高清视频www| 国产永久视频网站| 大又大粗又爽又黄少妇毛片口| 大片免费播放器 马上看| 精品亚洲成a人片在线观看| 91精品伊人久久大香线蕉| 免费看光身美女| 亚洲av综合色区一区| 成人手机av| 91成人精品电影| av国产精品久久久久影院| 久久久a久久爽久久v久久| 9色porny在线观看| 国产精品偷伦视频观看了| 午夜免费男女啪啪视频观看| 亚洲情色 制服丝袜| 久久精品熟女亚洲av麻豆精品| 亚洲精品乱久久久久久| 国产精品国产av在线观看| 亚洲欧美日韩另类电影网站| 国产男女内射视频| 视频在线观看一区二区三区| 一级毛片aaaaaa免费看小| 亚洲国产精品专区欧美| a级毛色黄片| 日本wwww免费看| a级片在线免费高清观看视频| 2021少妇久久久久久久久久久| 国产黄频视频在线观看| 亚洲精品国产av蜜桃| 天美传媒精品一区二区| 少妇丰满av| av专区在线播放| 国产一级毛片在线| 大香蕉久久网| av线在线观看网站| 97超视频在线观看视频| 国产无遮挡羞羞视频在线观看| 大片免费播放器 马上看| 成人无遮挡网站| 精品少妇黑人巨大在线播放| 搡老乐熟女国产| 久久免费观看电影| 乱人伦中国视频| 日韩制服骚丝袜av| av专区在线播放| 久久精品国产鲁丝片午夜精品| 又黄又爽又刺激的免费视频.| 在线天堂最新版资源| 免费黄网站久久成人精品| 国产日韩一区二区三区精品不卡 | 久久人人爽人人片av| 国产精品嫩草影院av在线观看| 日韩大片免费观看网站| 欧美精品一区二区大全| 少妇被粗大猛烈的视频| 欧美日韩国产mv在线观看视频| 18禁动态无遮挡网站| 久久av网站| 男女边摸边吃奶| 在线观看三级黄色| 国产精品一区www在线观看| 午夜影院在线不卡| 成人毛片a级毛片在线播放| 久久久久视频综合| 一本久久精品| 国产成人精品一,二区| 大陆偷拍与自拍| 国产一区二区在线观看av| 亚洲欧美日韩卡通动漫| 黑人巨大精品欧美一区二区蜜桃 | 国产精品无大码| 91久久精品国产一区二区三区| 久久久久精品性色| 精品99又大又爽又粗少妇毛片| 天天影视国产精品| 亚洲中文av在线| 老女人水多毛片| 一个人免费看片子| 99re6热这里在线精品视频| 久久99一区二区三区| 一区二区三区精品91| 日本vs欧美在线观看视频| 97在线视频观看| 91精品国产国语对白视频| 久久午夜福利片| 2018国产大陆天天弄谢| av在线播放精品| 99久国产av精品国产电影| 99热这里只有是精品在线观看| 亚洲av在线观看美女高潮| 午夜福利视频在线观看免费| 国产不卡av网站在线观看| 熟女av电影| 久久久久久久久久久免费av| 男的添女的下面高潮视频| 亚洲精品,欧美精品| 在线观看免费日韩欧美大片 | 久久久久久久久久久久大奶| 搡女人真爽免费视频火全软件| 精品久久久久久久久亚洲| 欧美人与性动交α欧美精品济南到 | 岛国毛片在线播放| 免费人妻精品一区二区三区视频| 我的女老师完整版在线观看| 亚洲国产精品一区三区| 男女免费视频国产| 成年人午夜在线观看视频| 国产精品不卡视频一区二区| 日韩 亚洲 欧美在线| 纵有疾风起免费观看全集完整版| 久久免费观看电影| 美女国产高潮福利片在线看| 你懂的网址亚洲精品在线观看| 国产黄色免费在线视频| videossex国产| 亚洲精品美女久久av网站| 亚洲综合精品二区| 欧美亚洲 丝袜 人妻 在线| 高清毛片免费看| 亚州av有码| 制服丝袜香蕉在线| 久久久a久久爽久久v久久| 九色亚洲精品在线播放| 一级毛片aaaaaa免费看小| 一级黄片播放器| 亚洲精品av麻豆狂野| 亚洲综合色惰| 午夜免费观看性视频| 制服丝袜香蕉在线| 乱人伦中国视频| 日本黄色片子视频| 我要看黄色一级片免费的| 男女国产视频网站| av福利片在线| 精品一区二区三卡| 日韩一区二区三区影片| 国产精品一国产av| 亚洲丝袜综合中文字幕| 热re99久久精品国产66热6| av国产久精品久网站免费入址| 人人澡人人妻人| 色哟哟·www| 成人毛片a级毛片在线播放| 天美传媒精品一区二区| 国产精品久久久久久av不卡| 91精品国产国语对白视频| 日本色播在线视频| 赤兔流量卡办理| 久久久久久久大尺度免费视频| 熟女人妻精品中文字幕| 九九久久精品国产亚洲av麻豆| 亚洲一区二区三区欧美精品| 高清午夜精品一区二区三区| 亚洲精品美女久久av网站| 国产不卡av网站在线观看| 天堂中文最新版在线下载| 成年美女黄网站色视频大全免费 | 爱豆传媒免费全集在线观看| 成人亚洲精品一区在线观看| 国产精品一区二区在线观看99| 久久久国产精品麻豆| av.在线天堂| 亚洲,欧美,日韩| 国产精品久久久久久精品古装| 在线观看人妻少妇| 在现免费观看毛片| 亚洲在久久综合| 日韩在线高清观看一区二区三区| 制服丝袜香蕉在线| 制服丝袜香蕉在线| 亚洲精品美女久久av网站| 欧美xxⅹ黑人| 2022亚洲国产成人精品| 少妇被粗大猛烈的视频| 人人妻人人澡人人看| 亚洲欧洲精品一区二区精品久久久 | 亚洲精品日韩在线中文字幕| 最近2019中文字幕mv第一页| 日日啪夜夜爽| 国产精品一区二区三区四区免费观看| 蜜臀久久99精品久久宅男| 大片电影免费在线观看免费| 精品久久久精品久久久| 久久久久久久大尺度免费视频| 精品一区二区三卡| 人成视频在线观看免费观看| 亚洲国产欧美在线一区| 亚洲欧美清纯卡通| 久久精品国产亚洲av天美| 亚洲久久久国产精品| 日本色播在线视频| 久久青草综合色| 国产精品嫩草影院av在线观看| av线在线观看网站| 另类亚洲欧美激情| 日本黄大片高清| 中文欧美无线码| √禁漫天堂资源中文www| 午夜激情av网站| 欧美日韩亚洲高清精品| 中国三级夫妇交换| 日韩强制内射视频| 欧美性感艳星| 美女国产高潮福利片在线看| 在线观看www视频免费| 欧美97在线视频| 成人亚洲欧美一区二区av| 免费人妻精品一区二区三区视频| 黑人猛操日本美女一级片| 人妻人人澡人人爽人人| 午夜激情av网站| 欧美变态另类bdsm刘玥| 少妇精品久久久久久久| 黑丝袜美女国产一区| 精品一区二区免费观看| 亚洲成人手机| 日本黄色片子视频| 欧美老熟妇乱子伦牲交| 久久热精品热| 国产一区亚洲一区在线观看| 我要看黄色一级片免费的| 亚洲第一av免费看| 中文字幕人妻丝袜制服| 欧美精品国产亚洲| 夜夜骑夜夜射夜夜干| 国产成人免费观看mmmm| 国产精品无大码| 国产男女内射视频| 国产精品一区www在线观看| 国产精品欧美亚洲77777| 日本猛色少妇xxxxx猛交久久| 最近2019中文字幕mv第一页| 大又大粗又爽又黄少妇毛片口| 亚洲中文av在线| 各种免费的搞黄视频| 亚洲高清免费不卡视频| 久久99热6这里只有精品| 在线精品无人区一区二区三| 亚洲精品日韩av片在线观看| 午夜久久久在线观看| av女优亚洲男人天堂| 在线观看免费视频网站a站| 中文天堂在线官网| 国产精品国产三级国产av玫瑰| 国产在视频线精品| 亚洲av成人精品一区久久| 亚洲精品久久久久久婷婷小说| 国产男女内射视频| 我要看黄色一级片免费的| av线在线观看网站| 国产男女超爽视频在线观看| 又大又黄又爽视频免费| 91精品国产国语对白视频| 欧美成人精品欧美一级黄| 日本黄色日本黄色录像| 视频区图区小说| 国产av国产精品国产| 亚洲av不卡在线观看| 国产免费又黄又爽又色| videosex国产| 午夜免费鲁丝| 麻豆成人av视频| 午夜久久久在线观看| av在线app专区| 观看av在线不卡| 欧美精品亚洲一区二区| 精品熟女少妇av免费看| 毛片一级片免费看久久久久| 人人妻人人爽人人添夜夜欢视频| 九色成人免费人妻av| 久久精品国产亚洲av天美| 如日韩欧美国产精品一区二区三区 | 亚洲国产最新在线播放| 伦理电影大哥的女人| 在线观看国产h片| 国产日韩欧美在线精品| 国产成人免费观看mmmm| 精品99又大又爽又粗少妇毛片| 亚洲精品亚洲一区二区| 精品人妻熟女av久视频| 18+在线观看网站| 极品人妻少妇av视频| 欧美日韩亚洲高清精品| 欧美日韩在线观看h| 老司机影院成人| 不卡视频在线观看欧美| 国产亚洲最大av| 免费黄频网站在线观看国产| 少妇人妻久久综合中文| 亚洲精品一区蜜桃| 少妇人妻 视频| 国产精品久久久久久久久免| 国产av码专区亚洲av| 日韩精品有码人妻一区| 99精国产麻豆久久婷婷| 成人国产麻豆网| 高清欧美精品videossex| 国产淫语在线视频| 国产一区二区三区av在线| 日韩强制内射视频| 在线 av 中文字幕| 成年女人在线观看亚洲视频| 热re99久久国产66热| 人妻系列 视频| 99国产精品免费福利视频| 哪个播放器可以免费观看大片| 国产黄片视频在线免费观看| 一个人免费看片子| 欧美激情国产日韩精品一区| 欧美97在线视频| av在线老鸭窝| 亚洲精品久久久久久婷婷小说| av国产精品久久久久影院| 久热久热在线精品观看| videosex国产| 美女脱内裤让男人舔精品视频| 久久精品熟女亚洲av麻豆精品| 交换朋友夫妻互换小说| 国产日韩一区二区三区精品不卡 | 99久久综合免费| 99热这里只有精品一区| 久久精品人人爽人人爽视色| 人成视频在线观看免费观看| 日本猛色少妇xxxxx猛交久久| 亚洲欧美日韩另类电影网站| 99国产精品免费福利视频| 十分钟在线观看高清视频www| 少妇人妻精品综合一区二区| 伊人久久精品亚洲午夜| 久久久久视频综合| 国产精品久久久久久精品古装| av有码第一页| 亚洲欧洲国产日韩| 性色avwww在线观看| 丝袜喷水一区| 亚洲精品视频女| 少妇猛男粗大的猛烈进出视频| 久久狼人影院| 蜜臀久久99精品久久宅男| 一区二区三区免费毛片| 精品视频人人做人人爽| 99热国产这里只有精品6| av不卡在线播放| 久久狼人影院| 亚洲第一区二区三区不卡| 久久综合国产亚洲精品| 日本91视频免费播放| 亚洲av欧美aⅴ国产| 丝袜美足系列| 亚洲性久久影院| av又黄又爽大尺度在线免费看| 丝袜在线中文字幕| 永久网站在线| 高清不卡的av网站| 国产一区有黄有色的免费视频| 日本色播在线视频| 婷婷色麻豆天堂久久| 大码成人一级视频| 人妻少妇偷人精品九色| 熟女av电影| 最新中文字幕久久久久| 国内精品宾馆在线| 亚洲精品一二三| 国产极品天堂在线| 日韩成人av中文字幕在线观看| 高清毛片免费看| 日韩成人伦理影院| 伊人久久国产一区二区| 国产精品99久久久久久久久| 亚洲国产av新网站| 王馨瑶露胸无遮挡在线观看| 国产乱人偷精品视频| 国产在线免费精品| 亚洲人成网站在线观看播放| 看非洲黑人一级黄片| 亚洲精品国产av成人精品| 国产成人午夜福利电影在线观看| 亚洲国产av影院在线观看| 高清欧美精品videossex| 亚洲国产精品999| 国产成人免费观看mmmm| 人妻系列 视频| 国产精品久久久久久久电影| 综合色丁香网| 久久婷婷青草| 色婷婷av一区二区三区视频| 国产精品国产三级国产专区5o| 插逼视频在线观看| 一边亲一边摸免费视频| 成人二区视频| 两个人的视频大全免费| 中文字幕av电影在线播放| 日韩一区二区视频免费看| 亚洲欧洲国产日韩| a级毛色黄片| 久久99一区二区三区| 久久午夜福利片| 日日摸夜夜添夜夜添av毛片| 在线观看美女被高潮喷水网站| av一本久久久久| 97超碰精品成人国产| 国产精品一区二区在线不卡| 久久鲁丝午夜福利片| 中文字幕av电影在线播放| 欧美最新免费一区二区三区| 欧美 亚洲 国产 日韩一| 国产成人精品无人区| 日韩免费高清中文字幕av| 亚洲人成77777在线视频| 成人漫画全彩无遮挡| 国产一区有黄有色的免费视频| 亚洲av成人精品一区久久| 日韩av在线免费看完整版不卡| 高清不卡的av网站| 亚洲人成网站在线观看播放| 亚洲国产精品专区欧美| 久久久久国产精品人妻一区二区| 99国产综合亚洲精品| 人人澡人人妻人| 日韩电影二区| 久久久久久久久大av| 特大巨黑吊av在线直播| 成人黄色视频免费在线看| av女优亚洲男人天堂| 免费大片黄手机在线观看| 多毛熟女@视频| 一个人免费看片子| 国产极品粉嫩免费观看在线 | 丁香六月天网| av播播在线观看一区| 最近手机中文字幕大全| .国产精品久久| 久久99热这里只频精品6学生| 日韩欧美一区视频在线观看| 最近最新中文字幕免费大全7| 国产精品蜜桃在线观看| av在线观看视频网站免费| 九色亚洲精品在线播放| 亚洲av日韩在线播放| 亚洲婷婷狠狠爱综合网| 人妻制服诱惑在线中文字幕| 制服人妻中文乱码| av专区在线播放| 久久久国产一区二区| 中文字幕亚洲精品专区| 十八禁高潮呻吟视频| 日韩熟女老妇一区二区性免费视频| 99久久精品一区二区三区| 免费少妇av软件| 日韩伦理黄色片| 飞空精品影院首页| av免费观看日本| 国产69精品久久久久777片| 日韩av不卡免费在线播放| 久久久久精品性色| 男女免费视频国产| 热99国产精品久久久久久7| 亚洲精品av麻豆狂野| 亚洲美女搞黄在线观看| 欧美亚洲 丝袜 人妻 在线| 在线观看免费高清a一片| 免费看光身美女| 久久久久久久久大av| 亚洲图色成人| av福利片在线| 日本黄色片子视频| 午夜福利网站1000一区二区三区| 免费观看无遮挡的男女| 秋霞伦理黄片| 桃花免费在线播放| 亚洲精品一区蜜桃| 十分钟在线观看高清视频www| 国产色爽女视频免费观看| 国产精品国产三级国产av玫瑰| 国产在线一区二区三区精| 日韩中文字幕视频在线看片| 亚洲无线观看免费| 一区二区三区乱码不卡18| 91午夜精品亚洲一区二区三区| 丰满饥渴人妻一区二区三| 亚洲国产av影院在线观看| 亚洲丝袜综合中文字幕| 一区二区三区四区激情视频| 国产精品久久久久久久电影| 一边摸一边做爽爽视频免费| 日本wwww免费看| 亚洲第一av免费看| 色视频在线一区二区三区| 国产av码专区亚洲av| 午夜激情福利司机影院| 久久99蜜桃精品久久| 欧美成人精品欧美一级黄| 久久精品久久久久久噜噜老黄| 纯流量卡能插随身wifi吗| 亚洲精品日韩在线中文字幕| 一本久久精品| 丝瓜视频免费看黄片| 日本午夜av视频| 日本与韩国留学比较| 晚上一个人看的免费电影| 亚洲伊人久久精品综合| 精品久久久噜噜| av天堂久久9| 亚洲在久久综合| 国产成人a∨麻豆精品| 18+在线观看网站| 天美传媒精品一区二区| 国产成人精品福利久久| 一本久久精品| 永久免费av网站大全| 国产 精品1| 日本与韩国留学比较| 香蕉精品网在线| 美女主播在线视频| 嘟嘟电影网在线观看| 搡女人真爽免费视频火全软件| 国产爽快片一区二区三区| 日日撸夜夜添| 青春草视频在线免费观看| a级毛片免费高清观看在线播放| 亚洲久久久国产精品| 毛片一级片免费看久久久久| 精品熟女少妇av免费看| 狂野欧美激情性bbbbbb| 国产 一区精品| 久久久久久人妻| 亚洲精品乱久久久久久| 免费少妇av软件| 一级二级三级毛片免费看| 国产成人午夜福利电影在线观看| 日韩成人av中文字幕在线观看| 国产精品一区二区在线观看99| 老司机影院成人| av播播在线观看一区| 乱人伦中国视频| 又粗又硬又长又爽又黄的视频| 亚洲人成网站在线观看播放| 免费大片18禁| 免费av不卡在线播放| 欧美日韩国产mv在线观看视频| 天堂中文最新版在线下载| 亚洲人与动物交配视频| 只有这里有精品99| 久久精品国产亚洲av天美| 自拍欧美九色日韩亚洲蝌蚪91| 少妇被粗大的猛进出69影院 | 2022亚洲国产成人精品| 久久久久久久大尺度免费视频| 亚洲美女视频黄频| 国产亚洲av片在线观看秒播厂| 欧美精品国产亚洲| 国产伦理片在线播放av一区| 男男h啪啪无遮挡| 亚洲av日韩在线播放| 久久久精品区二区三区| 母亲3免费完整高清在线观看 | 观看av在线不卡| a级毛片黄视频| 日产精品乱码卡一卡2卡三| 免费看av在线观看网站| 久久久久精品久久久久真实原创| 丁香六月天网| 国国产精品蜜臀av免费| 一个人看视频在线观看www免费| 王馨瑶露胸无遮挡在线观看| 男的添女的下面高潮视频| 丰满饥渴人妻一区二区三| 亚洲国产av新网站| 日韩电影二区| 天堂8中文在线网| 亚洲中文av在线| 日韩亚洲欧美综合| 国产极品天堂在线| 国产深夜福利视频在线观看| 国产成人精品婷婷| 亚洲久久久国产精品| 亚洲综合精品二区| 亚洲av中文av极速乱| 国产爽快片一区二区三区| 精品久久蜜臀av无| av专区在线播放| 最近中文字幕高清免费大全6| 一级毛片黄色毛片免费观看视频| 亚洲国产精品成人久久小说| 亚洲精品日韩av片在线观看| av在线老鸭窝| 亚洲国产精品一区三区| 99精国产麻豆久久婷婷| 熟女人妻精品中文字幕| 最黄视频免费看| 夜夜爽夜夜爽视频| 免费大片18禁| 欧美日韩综合久久久久久| 夜夜骑夜夜射夜夜干| 亚洲av国产av综合av卡| 高清毛片免费看| 国产精品三级大全| 黄色一级大片看看| av女优亚洲男人天堂| 成人毛片60女人毛片免费| 欧美丝袜亚洲另类| 日本vs欧美在线观看视频|