亚洲免费av电影一区二区三区,日韩爱爱视频,51精品视频一区二区三区,91视频爱爱,日韩欧美在线播放视频,中文字幕少妇AV,亚洲电影中文字幕,久久久久亚洲av成人网址,久久综合视频网站,国产在线不卡免费播放

        ?

        高級引力波探測器的機遇和挑戰(zhàn)

        2015-07-30 05:01:10DavidBurnhamTanner
        光學(xué)儀器 2015年1期
        關(guān)鍵詞:干涉儀引力波

        David+Burnham+Tanner

        摘要:激光干涉儀引力波觀測器已經(jīng)完成建設(shè),該觀測器稱為高級LIGO或aLIGO,與2002—2010年間使用的引力波搜尋設(shè)備相比,預(yù)期靈敏度可以提高一個數(shù)量級。目前aLIGO的調(diào)試正在試運行。為了達到提升靈敏度的要求,探測器中的所有元件需要提升水平。在此將討論光電調(diào)制器和法拉第隔離器在平均功率百萬瓦級分離高質(zhì)量光束能力的發(fā)展,并詳述它們在aLIGO輸入光學(xué)系統(tǒng)中的作用。

        關(guān)鍵詞:法拉第隔離器; 光電調(diào)制器; 引力波; 干涉儀

        中圖分類號: P 159 文獻標(biāo)志碼: A doi: 10.3969/j.issn.1005-5630.2015.01.019

        Abstract:The Laser Interferometer Gravitational-Wave Observatory (LIGO) has completed construction of an upgrade, called Advanced LIGO or aLIGO, which is expected to increase the sensitivity tenfold compared to the instruments which conducted searches for gravitational waves during 20022010. Commissioning of aLIGO is presently underway. Achieving the improved sensitivity requires extending the state of the art in all components of the detector. As examples, the development of electro-optic modulators and Faraday isolators capable of delivering high-quality beams at hundreds of Watts of average power are discussed and their performance in the input optics of aLIGO described.

        Keywords:Faraday isolator; electro-optic modulator; gravitational waves; interferometer

        Introduction

        This year is the 25th anniversary of the LIGO project,with the beginning marked by the 1989 submission by Caltech and MIT of a proposal to the NSF[1].The project began in earnest a couple of years later with site selection and civil construction of the two observatories at Hanford,WA,and Livingston,LA,construction of the four 4-km long arms of the vacuum chambers,and design and acquisition of the optical components of the detector.The University of Florida(UF)joined the project in 1996,taking responsibility for the input optics(IO)of the detector.

        The design of initial LIGO was kept as simple as possible[2-3].The optical configuration was a power-recycled Michelson with Fabry-Perot arms.The light source was a single-mode 10 W laser at 1 064 nm wavelength.Seismic isolation was provided by a passive stack of springs and masses,aided by a hydraulic external pre-isolator.The four 10-kg,25 cm diameter test masses,the beam splitter,and the power-recycling mirror were hung in single-stage pendulum suspensions.The control system held the mirrors to ±10-13 m.

        1 The Input Optics

        The IO[3-6] comprises all the optics between the pre-stabilized laser(PSL)and the power recycling cavity,the latter marks the start of the core optics(COC).This is true both for initial and advanced LIGO.A schematic of the IO is in Fig.1.The IO conditions the PSL laser light and delivers it to the interferometer.It provides RF phase modulation for length and alignment,control functions,power control,laser mode cleaning and frequency stabilization,isolation of the laser from interferometer reflected light,optical signal distribution to length,alignment,and intensity controls,and mode matching to recycling and arm cavities.

        Most of the IO components in initial LIGO were off-the-shelf commercial parts.This included the electro optic modulators and the Faraday rotator.Mirror blanks were polished to proper radii of curvature and coated by a high-quality ion-beam coating technique.Some mechanical parts were commercial,others were made by the UF Physics Machine Shop.These were installed in the three initial LIGO interferometers during the late 1990s,with the process completed by the end of 2000.

        Fig.2 shows view of the input optics in H2,the Hanford 2-km interferometer.The large suspended mirror near the center is MMT3(mode-matching telescope mirror 3),which delivers the full-sized beam to the interferometer.Two of the three mirrors and their suspensions for the mode cleaner are on the left.Steering mirrors and the Faraday isolator are behind MMT3.The large mirror(MMT3)was the first suspended optic installed in LIGO.

        2 Advanced LIGO

        Advanced LIGO(aLIGO)is designed for a 10× sensitivity improvement,including better low frequency response[7].Because the search volume scales as distance cubed,advanced LIGO will have more than 1000 times more sources within its reach.Predictions for event rates go from ~1 per 10 years to ~1 per week[8].

        To achieve this improved sensitivity,essentially everything except for the vacuum system has been replaced.This includes the use of a 180 W laser,quadruple pendulum suspensions,40 kg test masses,active seismic platforms,a signal recycled interferometer,stable recycling cavities,an output mode cleaner,DC readout,and improved thermal compensation.

        2.1 IO for advanced LIGO

        The higher laser power presented challenges for the input optics[6,9-11].Neither existing commercial phase modulators nor existing commercial Faraday isolators would tolerate 180 W.The former were subject to damage at powers much above 10 W and both devices suffer severe thermal lensing and depolarization when operated at high powers.The thermal lensing is power dependent and could reduce the mode coupling to the following cavities to a very small value.Thermal depolarization in the Faraday reduces the isolation ratio to unacceptably low values.

        The Florida group consequently undertook research to improve the performance of these devices.Other steps taken included using lower absorption fused silica mirror blanks,very low-loss mirror coatings,improved baffling of stray light,improved metrology,in-vacuum photodetectors,and many other things that also were being advanced by the core optics,instrument sensing and control,and other groups building aLIGO.

        2.2 The aLIGO EOM

        A review of electro-optics materials led to the selection of rubidium titanyl phosphate(RbTiOPO4 or RTP)as the most promising modulator material for aLIGO[6].Laboratory experiments corroborated this choice.

        Fig.3 shows a sketch of the RTP crystal,the electrodes,and the optical path as used in aLIGO.The three electrodes,permitting one crystal to provide phase modulation at three distinct frequencies.The wedge and refractions of the two polarizations are shown,with the angles greatly exaggerated.

        To avoid the unwanted generation of amplitude modulation by polarization modulation because of imperfect alignment of the incident light and also to avoid etalon interference effects we chose to wedge the faces of the RTP crystal.The birefringence of the RTP material separates the two polarizations and avoids polarization rotation that would lead to amplitude modulation.

        Another very positive effect of this is that the two polarizations are of very high purity,better than 105∶1.The crystal faces are antireflection coated,giving less than 0.1% remaining reflectivity.To reduce the number of optical surfaces,a single long crystal with three separate pairs of electrodes is used to produce the three required modulation frequencies.A housing,including RF matching circuits was designed for the modulator.

        showed no damage.There was a slightly anisotropic thermal lens at these powers,with focal length of 4 000 mm or greater.This is in contrast to the standard material,LiNbO3,which had a slightly shorter focal length thermal lens with only 10 W incident.RTP modulators have been installed and operated at both LIGO sites for almost three years and perform satisfactorily.Typical phase modulation indices are up to 0.4,with residual amplitude modulation less than 3×10-4 W/rad.Fig.4 shows the output of the modulator as measured by an optical spectrum analyzer,showing sideband frequencies of 9.1,24.1 and 45.5 MHz.

        2.3 aLIGO Faraday isolator

        For the Faraday isolator(FI),we use a custom design with passive compensation of thermal lensing[12] and thermal depolarization[13].Fig.5 shows a cartoon of the isolator,which was developed in collaboration with IAP,Nizny Novgorod.It uses two TGG crystals with a quartz rotator between.In high power operation,there is a non-uniform temperature profile in the TGG crystal.The temperature is highest at the center of the laser beam and falls off to ambient at the edges.This profile causes thermal depolarization because the Verdet constant V is temperature dependent.Ideally the polarization in a Faraday rotator is perfectly linear,and the plane of polarization rotates smoothly as the beam traverses the crystal,with the angle of rotation per unit length per unit magnetic field given by V.With a non-uniform temperature in the crystal some parts of the beam rotate more than others,causing depolarization.The use of two crystals,the reciprocal quartz rotator,and a custom magnet design in the aLIGO FI causes the thermal depolarization induced by the first TGG crystal to be taken out by the second TGG crystal[13].

        The Faraday also employs a similar trick to compensate for thermal lensing[12].The refractive index of TGG depends on temperature,so that the velocity of light traveling in the heated center of the crystal is slower than in the cooler outer part,leading to a graded-index lens effect which can be quite substantial.The isolator incorporates a negative dn/dT crystal(deuterated KH2PO4 or DKDP)whose thickness is chosen so that the positive lenses in the TGG crystals and the negative lens in the DKDP combine to have no net focusing effect.The FI also has an adjustable half wave plate to set the output polarization and calcite wedge polarizers(with up to 105 ∶1 separation of the two polarizations)at input and output.

        Figure 6 shows the performance of the two Faraday isolators of aLIGO as incident power is increased up to(in the LHO case)140 W.The isolation ratio was reduced at high power settings.This is attributed to an overall warming of the crystals.(The Verdet constant is inversely proportional to temperature.)The half-wave plate was not adjusted during these measurements.The isolation ratio could be partially recovered by adjusting the waveplate,but 30 dB meets the advanced LIGO requirements.

        2.4 Installation in advanced LIGO

        Figure 7 shows

        part of the aLIGO input optics,located in the HAM2 of the H1 interferometer.The Faraday isolator can be seen just above and to the right of picture center.The tower partially seen at the left is the triple-pendulum suspension for one mode cleaner mirror.Many other components are visible;indeed there is little uncommitted space here.The differences with the corresponding space for initial LIGO(Fig.2)represent the additional complexity and sophistication of advanced LIGO.

        3 Conclusions

        Advanced LIGO is poised to begin receiving gravitational-wave signals from sources up to 200 megaparscs(6×108 light years)from Earth.One may expect exciting times ahead as the instruments reach their design sensitivity.

        Acknowledgements

        The input optic construction was funded by a subcontract from the LIGO Laboratory.Research at the University of Florida was supported by National Science Foundation grants PHY-1205512 and PHY-0969935.I thank Rick Savage for a careful reading and for supplying the image in Fig.7.This document has been assigned LIGO Laboratory document number P1400211.

        References:

        [1] ABRAMOVICI A,ALTHOUSE W E,DREVER R W P,et al.LIGO:the laser interferometer gravitational-wave observatory[J].Science,1992,256:325-333.

        [2] ABBOTT B,ABBOTT R,ADHIKARI R,et al.Detector description and performance for the first coincidence observations between LIGO and GEO[J].Nucl.Instrum.Methods A,2004,517:154-179.

        [3] ABBOTT B P,ABBOTT R,ADHIKARI R,et al.LIGO:the laser interferometer gravitational-wave observatory[J].Rep.Prog.Phys,2009,72:1-25.

        [4] CAMP J,REITZE D,TANNER D B,et al.Input/output optics conceptual design,LIGO Document[DB/OL].1996,No.LIGO-T960170-00-D.

        [5] ADHIKARI R,DELKER T,REITZE D,et al.Input/output optics preliminary design,LIGO Document[DB/OL].1997,No.LIGO-T970144-00-D.

        [6] DOOLEY K L,ARAIN M A,F(xiàn)ELDBAUM D,et al.Thermal effects in the input optics of the enhanced laser interferometer gravitational-wave observatory interferometers[J].Rev.Sci.Instrum,2012,83:1-12.

        [7] AASI J,ABBOTT B P,ABBOTT R.Advanced LIGO,LIGO Document[DB/OL].2014,No.LIGO-P1400177.

        [8] ABADIE J,ABBOTT B P,ABBOTT R,et al.Predictions for the rates of compact binary coalescences observable by ground-based gravitational-wave detectors[J].Class.Quant.Grav,2010,27:173001.

        [9] MUELLER G,REITZE D,RONG H S,et al.Reference design document for the advanced LIGO input optics,LIGO Document[DB/OL].2000,No.LIGO-T010002-00-D.

        [10] AMIN R,MUELLER G,RAHKMANOV M,et al.Advanced LIGO input optics subsystem conceptual design document,LIGO Document[DB/OL].2002,No.LIGO-T020027-00-D.

        [11] ARAIN M A,LUCIANETTI A,MARTIN R,et al.Input optics subsystem preliminary design document,LIGO Document[DB/OL].2007,No.LIGO-T060269-01-D.

        [12] MUELLER G,AMIN R S,GUAGLIARDO D,et al.Method for compensation of thermally induced modal distortions in the input optical components of gravitational wave interferometers[J].Class.Quantum.Grav,2002,19:1793-1801.

        [13] PALASHOV O V,ZHELEZNOV D S,VOITOVICH A V,et al.High-vacuum-compatible high-power Faraday isolators for gravitational-wave interferometers[J].Opt.Soc.Am.B,2012,27:1784-1792.

        (編輯:劉鐵英)

        猜你喜歡
        干涉儀引力波
        基于改進的邁克爾遜干涉儀對熱變形特性的研究
        用于原子干涉儀的光學(xué)鎖相環(huán)系統(tǒng)
        黃浦江邊的“引力波”
        EN菌的引力波探測器
        非對稱干涉儀技術(shù)及工程實現(xiàn)
        基于最優(yōu)模糊的均勻圓陣干涉儀測向算法
        發(fā)現(xiàn)引力波
        引力波探測中國都能做些什么?
        太空探索(2016年4期)2016-07-12 15:17:50
        引力波之波
        太空探索(2016年4期)2016-07-12 15:17:49
        新春“引力波”一觸即發(fā)
        海峽姐妹(2016年2期)2016-02-27 15:15:18
        在线观看国产精品自拍| 亚洲亚洲人成综合网络| 国产内射性高湖| 欧美综合区自拍亚洲综合| 国产亚洲av夜间福利在线观看| 日韩经典午夜福利发布| 婷婷久久久亚洲欧洲日产国码av| 人妻无码一区二区在线影院| 少妇人妻字幕一区二区| 色婷婷精品久久二区二区蜜桃| 内射少妇36p亚洲区| 日本不卡视频网站| 精品蜜桃在线观看一区二区三区| 在线免费观看一区二区| 精品国模一区二区三区| 亚洲av不卡电影在线网址最新| 日本一区二区在线播放| 色偷偷偷在线视频播放| 国产在线无码制服丝袜无码| 天堂AV无码AV毛片毛| 五月婷婷开心六月激情| 青青青爽在线视频观看| 国产又爽又黄的激情精品视频| 国产精品人人爱一区二区白浆| 国产精品一区二区黄色| 漂亮人妻被中出中文字幕久久 | 国产一区二区三区在线电影| 亚洲日韩乱码中文无码蜜桃臀 | 亚洲午夜精品a区| 亚洲在中文字幕乱码熟女| 国产女人好紧好爽| 亚洲成色www久久网站夜月| 成人无码激情视频在线观看| 日本a级黄片免费观看| 久久久久无码精品国产app| 亚洲国产午夜精品乱码| 国产人妖直男在线视频| 全黄性性激高免费视频| 国产人成精品综合欧美成人| 成人短篇在线视频夫妻刺激自拍| 亚洲综合图色40p|