Performance metrics and active temperature control of spatial light modulators

被引:0
|
作者
Wolenski, Connor [1 ]
Linnenberger, Anna [1 ]
机构
[1] Meadowlark Opt, 5964 Iris Pkwy, Frederick, CO 80504 USA
来源
ADAPTIVE OPTICS AND WAVEFRONT CONTROL FOR BIOLOGICAL SYSTEMS IX | 2023年 / 12388卷
关键词
Spatial light modulator; SLM; liquid crystal; LCoS; optoelectronics; electro-optic devices; polarization; adaptive optics; holography; FLICKER;
D O I
10.1117/12.2649408
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Liquid crystal on silicon (LCoS) spatial light modulators (SLMs) are versatile scientific tools relevant to an increasingly wide variety of research and technological applications including digital holography, wavefront correction, optical tweezing, and non-mechanical beam steering to name a few. Since SLMs are used in a multitude of different ways, some aspects of device performance (e.g., response time) are crucial to certain applications while being irrelevant to others. In this work we couple our standard SLMs with a thermo-electric cooler, allowing for tunability of the device operating temperature from 0 degrees - 75 degrees C. We show that there is an inherent tradeoff between the liquid crystal response time and the phase stability of an SLM, and that the operating temperature offers a means of controlling this tradeoff. Furthermore, this paper aims to provide the reader with a brief but thorough explanation of SLM operating principles and device structure, defines the performance metrics of the SLM, and provides a methodology for measuring the specifications. By allowing control over the SLM operating temperature and detailing how temperature affects device functionality, SLM users are afforded greater experimental flexibility and will be better able to tailor the performance of their device for the given project or application at hand.
引用
收藏
页数:14
相关论文
共 50 条
  • [21] Operation of spatial light modulators in DUV light
    Dauderstädt, U
    Dürr, P
    Krellmann, M
    Karlin, T
    Berzinsh, U
    Leonardsson, L
    Wendrock, H
    MOEMS DISPLAY AND IMAGING SYSTEMS, 2003, 4985 : 222 - 229
  • [22] White-light measurement for high-performance liquid crystal spatial light modulators
    Hart, M
    Vass, DG
    Begbie, ML
    LIQUID CRYSTAL MATERIALS, DEVICES, AND APPLICATIONS V, 1997, 3015 : 21 - 31
  • [23] Spatial light modulators in telecommunication systems
    Yu, FTS
    Jutamulia, S
    SPATIAL LIGHT MODULATORS: TECHNOLOGY AND APPLICATIONS, 2001, 4457 : 164 - 169
  • [24] Spatial light modulators for projection displays
    Takizawa, K
    Fujii, T
    Kawakita, M
    Kikuchi, H
    Fujikake, H
    Yokozawa, M
    Murata, A
    Kishi, K
    APPLIED OPTICS, 1997, 36 (23): : 5732 - 5747
  • [25] SPATIAL LIGHT MODULATORS - CRITICAL ISSUES
    TANGUAY, AR
    OPTICAL ENGINEERING, 1983, 22 (06) : 663 - 663
  • [26] SPATIAL LIGHT MODULATORS AND APPLICATIONS - INTRODUCTION
    EFRON, U
    PROCEEDINGS OF THE SOCIETY OF PHOTO-OPTICAL INSTRUMENTATION ENGINEERS, 1984, 465 : R5 - R5
  • [27] Application of spatial light modulators for microlithography
    Dauderstädt, U
    Dürr, P
    Karlin, T
    Schenk, H
    Lakner, H
    MOEMS DISPLAY AND IMAGING SYSTEMS II, 2004, 5348 : 119 - 126
  • [28] Liquid crystals in spatial light modulators
    Mol Cryst Liq Cryst Sci Technol Sect A Mol Crys Liq Cryst, pt 5 (599):
  • [29] Global flatness of spatial light modulators
    Wagner, Michael
    Kuenzelmann, Ulrich
    Schenk, Harald
    Lakner, Hubert
    MOEMS DISPLAY, IMAGING, AND MINIATURIZED MICROSYSTEMS IV, 2006, 6114
  • [30] Addressing requirements for chiral smectic liquid crystal active backplane spatial light modulators
    Crossland, W.A.
    Davey, A.B.
    Ferroelectrics, 1993, 149 (1 -4 pt 3) : 361 - 374