| [1] CHELLAPPAN K V, ERDEN E, UREY H. Laser-based displays: a review [J]. Appl Opt, 2010, 49(25): F79-98.[2] XU Z-Y. Large colour gamut display - the new generation of display technique [J]. Wuli (China), 2010, 39(4): 227-31.[3] SVELTO O, HANNA D C. Principles of lasers [M]. Springer, 2010.[4] MASAOKA K. Analysis of standard chromaticity gamut area metrics [J]. J Soc Inf Disp, 2016, 24(12): 741-6.[5] MASAOKA K, NISHIDA Y. Metric of color-space coverage for wide-gamut displays [J]. Opt Express, 2015, 23(6): 7802-8.[6] CHO K S, LEE E K, JOO W J, et al. High-performance crosslinked colloidal quantum-dot light-emitting diodes [J]. Nat Photonics, 2009, 3(6): 341-5.[7] Martínez-Verdú F, Perales E, Chorro E, et al. Computation and visualization of the MacAdam limits for any lightness, hue angle, and light source[J]. JOSA A, 2007, 24(6): 1501-1515.[8] MACADAM D L. The theory of the maximum visual efficiency of colored materials [J]. J Opt Soc Am, 1935, 25(8): 249-52.[9] MACADAM D L. Maximum visual efficiency of colored materials [J]. J Opt Soc Am, 1935, 25(11): 361-7.[10] Wang G, Yang Y, Dong T, et al. Macadam’s theory in RGB laser display[J]. Chinese Physics B, 2019, 28(6): 064209.[11] YAO B, ZHU L, YANG Y, et al. General solution to the calculation of peak luminance of primaries in multi-primary display systems [J]. Opt Express, 2022, 30(2): 1036-55.[12] Zhu L, Yao B, Li T, et al. Research on the color gamut volume and light efficiency in four-primary laser display systems[J]. Optics Express, 2023, 31(16): 26815-26830.[13] Zhu L, Yao B, Deng L, et al. Evaluation of gamut enhancement in yellow regions and a choice of optimal wavelength for a RGBY four-primary laser display system[J]. Optics Express, 2022, 30(21): 38938-38952.[14] OU-YANG M, HUANG S W. Determination of Gamut Boundary Description for multi-primary color displays [J]. Opt Express, 2007, 15(20): 13388-403.[15] LIN S Y, TAN G J, YU J H, et al. Multi-primary-color quantum-dot down-converting films for display applications [J]. Opt Express, 2019, 27(20): 28480-93.[16] Luo Z, Chen Y, Wu S T. Wide color gamut LCD with a quantum dot backlight[J]. Optics express, 2013, 21(22): 26269-26284.[17] ZHU R D, LUO Z Y, CHEN H W, et al. Realizing Rec. 2020 color gamut with quantum dot displays [J]. Opt Express, 2015, 23(18): 23680-93.[18] DENG F, XIONG Y. Analysis of Novel OLED Based Four-Primary Displays; proceedings of the 5th International Conference on Mechanical, Industrial, and Manufacturing Technologies (MIMT), Penang, MALAYSIA, F Mar 10-11, 2014 [C]. Trans Tech Publications Ltd: DURNTEN-ZURICH, 2014.[19] HAN S H, KIM Y H, YOON J M, et al. P‐186: Luminance Enhancement by Four‐Primary‐Color (RGBY); proceedings of the SID Symp Dig Tech Pap (USA), F, 2010 [C]. Wiley Online Library.[20] HSIEH Y F, CHUANG M C, OU-YANG M, et al. Establish a six-primary color display without pixel-distortion and brightness loss; proceedings of the Conference on Emerging Liquid Crystal Technologies III, San Jose, CA, F Jan 20-22, 2008 [C]. Spie-Int Soc Optical Engineering: BELLINGHAM, 2008.[21] WANG Y C, HUANG B S, HSIEH K S, et al. Comparative Evaluation of the Imaging Performance of Multi-Primary Color LCDs With RGBCW and RGBCY Pixel Units by Simulation [J]. Journal of Display Technology, 2014, 10(9): 729-36.[22] JIANG H N, LIN Z B, LI Y, et al. Projection optical engine design based on tri-color LEDs and digital light processing technology [J]. Appl Opt, 2021, 60(23): 6971-7.[23] LI Y, JIANG H A, YAN Y G, et al. Highly efficient and ultra-compact micro-LED pico-projector based on a microlens array [J]. J Soc Inf Disp, 2023, 31(7): 483-93.[24] BUCKLEY E. Laser Wavelength Choices for Pico-Projector Applications [J]. Journal of Display Technology, 2011, 7(7): 402-6.[25] LUO Z Y, WU S T. A Spatiotemporal Four-Primary Color LCD With Quantum Dots [J]. Journal of Display Technology, 2014, 10(5): 367-72.[26] Judd D B, MacAdam D L, Wyszecki G, et al. Spectral distribution of typical daylight as a function of correlated color temperature[J]. Josa, 1964, 54(8): 1031-1040.[27] PARDO P J, SUERO M I, PEREZ A L, et al. Optimization of the correlated color temperature of a light source for a better color discrimination [J]. Optical Society of America a-Optics Image Science and Vision, 2014, 31(4): A121-A4.[28] PARDO P J, CORDERO E M, SUERO M I, et al. Influence of the correlated color temperature of a light source on the color discrimination capacity of the observer [J]. Optical Society of America a-Optics Image Science and Vision, 2012, 29(2): A209-A15.[29] HSIEH Y F, OU-YANG M, HUANG T W, et al. Determination of optimal converting point of color temperature conversion complied with ANSI C78. 377 for indoor solid-state lighting and display applications [J]. Opt Express, 2012, 20(18): 20059-70.[30] HUNG P C, TSAO J Y. Maximum White Luminous Efficacy of Radiation Versus Color Rendering Index and Color Temperature: Exact Results and a Useful Analytic Expression [J]. Journal of Display Technology, 2013, 9(6): 405-12.[31] MASAOKA K. Proper application of chromaticity gamut area metrics for displays [J]. Opt Express, 2021, 29(18): 29107-15.[32] WANG C, YAO B, MA J, et al. Selection of white balance point in three primaries laser display [J]. Laser Technology, 2021, 45(4): 411-6.[33] ZHU L Q, WANG G, YANG Y H, et al. Six-primary-laser projection display system: demonstration and stereo color gamut measurement [J]. Opt Express, 2021, 29(26): 43885-98.[34] Xie H, Rodríguez-Pardo C E, Sharma G. Multiobjective optimization for color display primary designs[J]. Journal of Electronic Imaging, 2017, 26(6): 063013-063013. |