Chinese Journal of Lasers, Volume. 48, Issue 4, 0401011(2021)
Vaccum Optical Tweezers System and its Research Progress in Precision Measurement
[2] Zhang W P[M]. Advances in quantum optics, 127-129(2014).
[3] Li Y M, Yao K[M]. Optical tweezers, 6-17(2015).
[4] Jones P H, Marago O, Volpe G[M]. Optical tweezers: principles & applications, 2-11(2015).
[8] Ashkin A, Dziedzic J M, Bjorkholm J E et al. Observation of a single-beam gradient force optical trap for dielectric particles[J]. Optics Letters, 11, 288-290(1986).
[10] Wang M D, Yin H, Landick R et al. Stretching DNA with optical tweezers[J]. Biophysical Journal, 72, 1335-1346(1997).
[12] Cecconi C, Shank E A, Bustamante C et al. Direct observation of the three-state folding of a single protein molecule[J]. Science, 309, 2057-2060(2005).
[16] Li T C, Kheifets S, Raizen M G. Millikelvin cooling of an optically trapped microsphere in vacuum[J]. Nature Physics, 7, 527-530(2011).
[20] Li T C, Kheifets S, Medellin D et al. Measurement of the instantaneous velocity of a Brownian particle[J]. Science, 328, 1673-1675(2010).
[24] Barker P F. Doppler cooling a microsphere[J]. Physical Review Letters, 105, 073002(2010).
[30] Ranjit G, Cunningham M, Casey K et al. Zeptonewton force sensing with nanospheres in an optical lattice[J]. Physical Review A, 93, 053801(2016).
[32] Millen J, Monteiro T S, Pettit R et al. Optomechanics with levitated particles[J]. Reports on Progress in Physics., 83, 026401(2020).
[34] Harada Y, Asakura T. Radiation forces on a dielectric sphere in the Rayleigh scattering regime[J]. Optics Communications, 124, 529-541(1996).
[35] Ashkin A. Forces of a single-beam gradient laser trap on a dielectric sphere in the ray optics regime[J]. Biophysical Journal, 61, 569-582(1992).
[40] Zhou J H, Ren H L, Cai J et al. Ray-tracing methodology: application of spatial analytic geometry in the ray-optic model of optical tweezers[J]. Applied Optics, 47, 6307-6314(2008).
[45] Nieminen T A. Loke V L Y, Stilgoe A B, et al. Optical tweezers computational toolbox[J]. Journal of Optics A: Pure and Applied Optics, 9, S196-S203(2007).
[55] Tauro S, Bañas A, Palima D et al. Dynamic axial stabilization of counter-propagating beam-traps with feedback control[J]. Optics Express, 18, 18217-18222(2010).
[57] Ojala H, Korsbäck A, Wallin A E et al. Optical position clamping with predictive control[J]. Applied Physics Letters, 95, 181104(2009).
[59] Wulff K D, Cole D G, Clark R L. Servo control of an optical trap[J]. Applied Optics, 46, 4923-4931(2007).
[61] Li T C. Towards quantum ground-state cooling[M]. New York: Springer, 111-122(2012).
[63] Jauffred L. Taheri S M R, Schmitt R, et al. Optical trapping of gold nanoparticles in air[J]. Nano Letters, 15, 4713-4719(2015).
[65] Hoang T M, Ahn J, Bang J et al. Electron spin control of optically levitated nanodiamonds in vacuum[J]. Nature Communications, 7, 12250(2016).
[67] Vovrosh J, Rashid M, Hempston D et al. Parametric feedback cooling of levitated optomechanics in a parabolic mirror trap[J]. Journal of the Optical Society of America B, 34, 1421-1428(2017).
[68] Chen X L, Xiao G Z, Han X et al. Observation of spin and orbital rotation of red blood cell in dual-beam fibre-optic trap with transverse offset[J]. Journal of Optics, 19, 055612(2017).
[79] Huisstede J H G, Bennink M L et al. Force detection in optical tweezers using backscattered light[J]. Optics Express, 13, 1113-1123(2005).
[81] Garbos M K, Euser T G, Schmidt O A et al. Doppler velocimetry on microparticles trapped and propelled by laser light in liquid-filled photonic crystal fiber[J]. Optics Letters, 36, 2020-2022(2011).
[82] Zhang Y, Liang P B, Liu Z H et al. A novel temperature sensor based on optical trapping technology[J]. Journal of Lightwave Technology, 32, 1394-1398(2014).
[83] Xiong W, Xiao G Z, Han X et al. All-fiber interferometer for displacement and velocity measurement of a levitated particle in fiber-optic traps[J]. Applied Optics, 58, 2081-2084(2019).
[84] García L P, Pérez J D, Volpe G et al. High-performance reconstruction of microscopic force fields from Brownian trajectories[J]. Nature Communications, 9, 5166(2018).
[87] Imboden M, Mohanty P. Dissipation in nanoelectromechanical systems[J]. Physics Reports, 534, 89-146(2014).
[96] Endo D, Yabuno H, Higashino K et al. Self-excited coupled-microcantilevers for mass sensing[J]. Applied Physics Letters, 106, 223105(2015).
[99] Kim P H, Hauer B D, Doolin C et al. Approaching the standard quantum limit of mechanical torque sensing[J]. Nature Communications, 7, 13165(2016).
[100] Arvanitaki A, Geraci A A. Detecting high-frequency gravitational waves with optically levitated sensors[J]. Physical Review Letters, 110, 071105(2013).
[102] Teufel J D, Donner T, Li D et al. Sideband cooling of micromechanical motion to the quantum ground state[J]. Nature, 475, 359-363(2011).
[103] Chan J, Alegre T P. Safavi-Naeini A H, et al. Laser cooling of a nanomechanical oscillator into its quantum ground state[J]. Nature, 478, 89-92(2011).
[104] Jain V, Tebbenjohanns F, Novotny L. Microkelvin control of an optically levitated nanoparticle. [C]// Frontiers in Optics 2016, October 17-21, 2016, Rochester, New York. Washington, D.C.: OSA, FF5B, 2(2016).
Get Citation
Copy Citation Text
Xiang Han, Xinlin Chen, Wei Xiong, Tengfang Kuang, Zhijie Chen, Miao Peng, Guangzong Xiao, Kaiyong Yang, Hui Luo. Vaccum Optical Tweezers System and its Research Progress in Precision Measurement[J]. Chinese Journal of Lasers, 2021, 48(4): 0401011
Special Issue: SPECIAL ISSUE FOR "NATIONAL UNIVERSITY OF DEFENSE TECHNOLOGY"
Received: Aug. 10, 2020
Accepted: Sep. 27, 2020
Published Online: Feb. 5, 2021
The Author Email: Xiao Guangzong (xiaoguangzong@nudt.edu.cn)