• Photonics Research
  • Vol. 9, Issue 11, 2132 (2021)
Tingzhu Wu1、2、†, Yue Lin1、2、†, Yu-Ming Huang3、†, Meng Liu1, Konthoujam James Singh3, Wansheng Lin1, Tingwei Lu1, Xi Zheng1, Jianyang Zhou1, Hao-Chung Kuo3、4、5、*, and Zhong Chen1、2、6、*
Author Affiliations
  • 1School of Electronic Science and Engineering, Fujian Engineering Research Center for Solid-State Lighting, Xiamen University, Xiamen 361005, China
  • 2Fujian Science & Technology Innovation Laboratory for Energy Materials of China, Xiamen 361005, China
  • 3Department of Photonics and Graduate Institute of Electro-Optical Engineering, College of Electrical and Computer Engineering, Taiwan Chiao Tung University, Hsinchu 30010, China
  • 4Semiconductor Research Center, Hon Hai Research Institute, Taipei 11492, China
  • 5e-mail: hckuo@faculty.nctu.edu.tw
  • 6e-mail: chenz@xmu.edu.cn
  • show less
    DOI: 10.1364/PRJ.431095 Cite this Article Set citation alerts
    Tingzhu Wu, Yue Lin, Yu-Ming Huang, Meng Liu, Konthoujam James Singh, Wansheng Lin, Tingwei Lu, Xi Zheng, Jianyang Zhou, Hao-Chung Kuo, Zhong Chen. Highly stable full-color display device with VLC application potential using semipolar μLEDs and all-inorganic encapsulated perovskite nanocrystal[J]. Photonics Research, 2021, 9(11): 2132 Copy Citation Text show less
    References

    [1] C. Chang, K. Bang, G. Wetzstein, B. Lee, L. Gao. Toward the next-generation VR/AR optics: a review of holographic near-eye displays from a human-centric perspective. Optica, 7, 1563-1578(2020).

    [2] Y.-M. Huang, K. J. Singh, A.-C. Liu, C.-C. Lin, Z. Chen, K. Wang, Y. Lin, Z. Liu, T. Wu, H.-C. Kuo. Advances in quantum-dot-based displays. Nanomaterials, 10, 1327(2020).

    [3] T. Wu, C.-W. Sher, Y. Lin, C.-F. Lee, S. Liang, Y. Lu, S.-W. H. Chen, W. Guo, H.-C. Kuo, Z. Chen. Mini-LED and micro-LED: promising candidates for the next generation display technology. Appl. Sci., 8, 1557(2018).

    [4] S.-W. Huang Chen, C.-C. Shen, T. Wu, Z.-Y. Liao, L.-F. Chen, J.-R. Zhou, C.-F. Lee, C.-H. Lin, C.-C. Lin, C.-W. Sher, P.-T. Lee, A.-J. Tzou, Z. Chen, H.-C. Kuo. Full-color monolithic hybrid quantum dot nanoring micro light-emitting diodes with improved efficiency using atomic layer deposition and nonradiative resonant energy transfer. Photon. Res., 7, 416-422(2019).

    [5] Y. Huang, E.-L. Hsiang, M.-Y. Deng, S.-T. Wu. Mini-LED, micro-LED and OLED displays: present status and future perspectives. Light Sci. Appl., 9, 105(2020).

    [6] J. Cho, J. H. Park, J. K. Kim, E. F. Schubert. White light-emitting diodes: history, progress, and future. Laser Photon. Rev., 11, 1600147(2017).

    [7] D. Hwang, A. Mughal, C. Pynn, S. Nakamura, S. Denbaars. Sustained high external quantum efficiency in ultrasmall blue III-nitride micro-LEDs. Appl. Phys. Express, 10, 032101(2017).

    [8] X. Wang, Z. Bao, Y.-C. Chang, R.-S. Liu. Perovskite quantum dots for application in high color gamut backlighting display of light-emitting diodes. ACS Energy Lett., 5, 3374-3396(2020).

    [9] C.-H. Lin, A. Verma, C.-Y. Kang, Y.-M. Pai, T.-Y. Chen, J.-J. Yang, C.-W. Sher, Y.-Z. Yang, P.-T. Lee, C.-C. Lin, Y.-C. Wu, S. K. Sharma, T. Wu, S.-R. Chung, H.-C. Kuo. Hybrid-type white LEDs based on inorganic halide perovskite QDs: candidates for wide color gamut display backlights. Photon. Res., 7, 579-585(2019).

    [10] C. C. Lin, R.-S. Liu. Advances in phosphors for light-emitting diodes. J. Phys. Chem. Lett., 2, 1268-1277(2011).

    [11] Z. Liu, C.-H. Lin, B.-R. Hyun, C.-W. Sher, Z. Lv, B. Luo, F. Jiang, T. Wu, C.-H. Ho, H.-C. Kuo, J.-H. He. Micro-light-emitting diodes with quantum dots in display technology. Light Sci. Appl., 9, 83(2020).

    [12] J. A. Steele, H. Jin, I. Dovgaliuk, R. F. Berger, T. Braeckevelt, H. Yuan, C. Martin, E. Solano, K. Lejaeghere, S. M. J. Rogge, C. Notebaert, W. Vandezande, K. P. F. Janssen, B. Goderis, E. Debroye, Y.-K. Wang, Y. Dong, D. Ma, M. Saidaminov, H. Tan, Z. Lu, V. Dyadkin, D. Chernyshov, V. Van Speybroeck, E. H. Sargent, J. Hofkens, M. B. J. Roeffaers. Thermal unequilibrium of strained black CsPbI3 thin films. Science, 365, 679-684(2019).

    [13] S. Masi, A. F. Gualdrón-Reyes, I. Mora-Seró. Stabilization of black perovskite phase in FAPbI3 and CsPbI3. ACS Energy Lett., 5, 1974-1985(2020).

    [14] Y. Wei, Z. Cheng, J. Lin. An overview on enhancing the stability of lead halide perovskite quantum dots and their applications in phosphor-converted LEDs. Chem. Soc. Rev., 48, 310-350(2019).

    [15] Z. Shangguan, X. Zheng, J. Zhang, W. Lin, W. Guo, C. Li, T. Wu, Y. Lin, Z. Chen. The stability of metal halide perovskite nanocrystals–a key issue for the application on quantum-dot-based micro light-emitting diodes display. Nanomaterials, 10, 1375(2020).

    [16] L. Shi, L. Meng, F. Jiang, Y. Ge, F. Li, X. G. Wu, H. Zhong. In situ inkjet printing strategy for fabricating perovskite quantum dot patterns. Adv. Funct. Mater., 29, 1903648(2019).

    [17] M. C. C. d. Oliveira, A. S. A. C. Diniz, M. M. Viana, V. d. F. C. Lins. The causes and effects of degradation of encapsulant ethylene vinyl acetate copolymer (EVA) in crystalline silicon photovoltaic modules: a review. Renew. Sustain. Energy Rev., 81, 2299-2317(2018).

    [18] T. Takeuchi, S. Sota, M. Katsuragawa, M. Komori, H. Takeuchi, H. Amano, I. Akasaki. Quantum-confined stark effect due to piezoelectric fields in GaInN strained quantum wells. Jpn. J. Appl. Phys., 36, L382-L385(1997).

    [19] S.-W. H. Chen, Y.-M. Huang, Y.-H. Chang, Y. Lin, F.-J. Liou, Y.-C. Hsu, J. Song, J. Choi, C.-W. Chow, C.-C. Lin, R.-H. Horng, Z. Chen, J. Han, T. Wu, H.-C. Kuo. High-bandwidth green semipolar (20-21) InGaN/GaN micro light-emitting diodes for visible light communication. ACS Photon., 7, 2228-2235(2020).

    [20] S.-W. H. Chen, Y.-M. Huang, K. J. Singh, Y.-C. Hsu, F.-J. Liou, J. Song, J. Choi, P.-T. Lee, C.-C. Lin, Z. Chen, J. Han, T. Wu, H.-C. Kuo. Full-color micro-LED display with high color stability using semipolar (20-21) InGaN LED and quantum-dot photoresist. Photon. Res., 8, 630-636(2020).

    [21] K. James Singh, Y.-M. Huang, T. Ahmed, A.-C. Liu, S.-W. Huang Chen, F.-J. Liou, T. Wu, C.-C. Lin, C.-W. Chow, G.-R. Lin, H.-C. Kuo. Micro-LED as a promising candidate for high-speed visible light communication. Appl. Sci., 10, 7384(2020).

    [22] C. H. Kang, I. Dursun, G. Liu, L. Sinatra, X. Sun, M. Kong, J. Pan, P. Maity, E.-N. Ooi, T. K. Ng, O. F. Mohammed, O. M. Bakr, B. S. Ooi. High-speed colour-converting photodetector with all-inorganic CsPbBr3 perovskite nanocrystals for ultraviolet light communication. Light Sci. Appl., 8, 94(2019).

    [23] S. Zhang, D. Tsonev, S. Videv, S. Ghosh, G. A. Turnbull, I. D. W. Samuel, H. Haas. Organic solar cells as high-speed data detectors for visible light communication. Optica, 2, 607-610(2015).

    [24] S. Mei, X. Liu, W. Zhang, R. Liu, L. Zheng, R. Guo, P. Tian. High-bandwidth white-light system combining a micro-LED with perovskite quantum dots for visible light communication. ACS Appl. Mater. Interfaces, 10, 5641-5648(2018).

    [25] P. Tian, X. Liu, S. Yi, Y. Huang, S. Zhang, X. Zhou, L. Hu, L. Zheng, R. Liu. High-speed underwater optical wireless communication using a blue GaN-based micro-LED. Opt. Express, 25, 1193-1201(2017).

    [26] G. Kozlowski, S. Schulz, B. Corbett. Polarization matching design of InGaN-based semi-polar quantum wells—a case study of (11–22) orientation. Appl. Phys. Lett., 104, 051128(2014).

    [27] D. Rosales, B. Gil, T. Bretagnon, B. Guizal, F. Zhang, S. Okur, M. Monavarian, N. Izyumskaya, V. Avrutin, Ü. Özgür, H. Morkoç, J. H. Leach. Excitonic recombination dynamics in non-polar GaN/AlGaN quantum wells. J. Appl. Phys., 115, 073510(2014).

    [28] H. Zhang, P. Li, H. Li, J. Song, S. Nakamura, S. P. Denbaars. High polarization and fast modulation speed of dual wavelengths electroluminescence from semipolar (20-21) micro light-emitting diodes with indium tin oxide surface grating. Appl. Phys. Lett., 117, 181105(2020).

    [29] J. Song, J. Choi, C. Zhang, Z. Deng, Y. Xie, J. Han. Elimination of stacking faults in semipolar GaN and light-emitting diodes grown on sapphire. ACS Appl. Mater. Interfaces, 11, 33140-33146(2019).

    [30] Q. Zhang, B. Wang, W. Zheng, L. Kong, Q. Wan, C. Zhang, Z. Li, X. Cao, M. Liu, L. Li. Ceramic-like stable CsPbBr3 nanocrystals encapsulated in silica derived from molecular sieve templates. Nat. Commun., 11, 31(2020).

    [31] C. Sun, Y. Zhang, C. Ruan, C. Yin, X. Wang, Y. Wang, W. W. Yu. Efficient and stable white LEDs with silica-coated inorganic perovskite quantum dots. Adv. Mater., 28, 10088-10094(2016).

    [32] H.-C. Wang, S.-Y. Lin, A.-C. Tang, B. P. Singh, H.-C. Tong, C.-Y. Chen, Y.-C. Lee, T.-L. Tsai, R.-S. Liu. Mesoporous silica particles integrated with all-inorganic CsPbBr3 perovskite quantum-dot nanocomposites (MP-PQDs) with high stability and wide color gamut used for backlight display. Angew. Chem., 55, 7924-7929(2016).

    [33] M. Achermann, M. A. Petruska, S. Kos, D. L. Smith, D. D. Koleske, V. I. Klimov. Energy-transfer pumping of semiconductor nanocrystals using an epitaxial quantum well. Nature, 429, 642-646(2004).

    [34] I.-K. Park, M.-K. Kwon, S.-B. Seo, J.-Y. Kim, J.-H. Lim, S.-J. Park. Ultraviolet light-emitting diodes with self-assembled InGaN quantum dots. Appl. Phys. Lett., 90, 111116(2007).

    [35] S. E. Brinkley, Y.-D. Lin, A. Chakraborty, N. Pfaff, D. Cohen, J. S. Speck, S. Nakamura, S. P. DenBaars. Polarized spontaneous emission from blue-green m-plane GaN-based light emitting diodes. Appl. Phys. Lett., 98, 011110(2011).

    [36] Y. Zhao, S. Tanaka, Q. Yan, C.-Y. Huang, R. B. Chung, C.-C. Pan, K. Fujito, D. Feezell, C. G. V. d. Walle, J. S. Speck, S. P. DenBaars, S. Nakamura. High optical polarization ratio from semipolar (20-2-1) blue-green InGaN/GaN light-emitting diodes. Appl. Phys. Lett., 99, 051109(2011).

    Tingzhu Wu, Yue Lin, Yu-Ming Huang, Meng Liu, Konthoujam James Singh, Wansheng Lin, Tingwei Lu, Xi Zheng, Jianyang Zhou, Hao-Chung Kuo, Zhong Chen. Highly stable full-color display device with VLC application potential using semipolar μLEDs and all-inorganic encapsulated perovskite nanocrystal[J]. Photonics Research, 2021, 9(11): 2132
    Download Citation