Acta Optica Sinica, Volume. 44, Issue 2, 0200004(2024)

Patterning Technology of High-Resolution Quantum Dots

Youjiang Pan1, Lihua Lin1,2, Kaiyu Yang1, Wei Chen1, Hailong Hu1,2, Tailiang Guo1,2, and Fushan Li1,2、*
Author Affiliations
  • 1Institute of Optoelectronic Display Technology, Fuzhou University, Fuzhou 350108, Fujian , China
  • 2Fujian Science and Technology Innovation Laboratory for Optoelectronic Information of China, Fuzhou 350108, Fujian , China
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    References(58)

    [1] Ye T K, Li D P, Sun X W et al. Research progress of quantum dot micro display technology[J]. Opto-Electronic Engineering, 49, 220008(2022).

    [2] Cheng D W, Wang Q W, Liu Y E et al. Design and manufacture AR head-mounted displays: a review and outlook[J]. Light: Advanced Manufacturing, 2, 336(2021).

    [3] Mashford B S, Nguyen T L, Wilson G J et al. All-inorganic quantum-dot light-emitting devices formed via low-cost, wet-chemical processing[J]. Journal of Materials Chemistry, 20, 167-172(2010).

    [4] Chen S, Cao W R, Liu T L et al. On the degradation mechanisms of quantum-dot light-emitting diodes[J]. Nature Communications, 10, 765(2019).

    [5] Sun Q J, Wang Y A, Li L S et al. Bright, multicoloured light-emitting diodes based on quantum dots[J]. Nature Photonics, 1, 717-722(2007).

    [6] Ding K, Fang Y S, Dong S H et al. 24.1% external quantum efficiency of flexible quantum dot light-emitting diodes by light extraction of silver nanowire transparent electrodes[J]. Advanced Optical Materials, 6, 1800347(2018).

    [7] Cheng C, Deng X J. Photoluminescence lifetime of CdSxSe1-x/ZnS (core/shell) quantum dot[J]. Acta Optica Sinica, 39, 0830003(2019).

    [8] Nasirzadeh K, Nazarian S, Hayat S M. Inorganic nanomaterials; A brief overview of the applications and developments in sensing and drug delivery[J]. Journal of Applied Biotechnology Reports, 3, 395-402(2016).

    [9] Stoumpos C C, Kanatzidis M G. Halide perovskites: poor man’s high-performance semiconductors[J]. Advanced Materials, 28, 5778-5793(2016).

    [10] Liu Y M, Chen Y H, Huang W. Progress on flexible perovskite light-emitting diodes[J]. Acta Optica Sinica, 43, 2100001(2023).

    [11] Li Z T, Cao K, Li J S et al. Review of blue perovskite light emitting diodes with optimization strategies for perovskite film and device structure[J]. Opto-Electronic Advances, 4, 20001901-20001915(2021).

    [12] Hong N H. Introduction to nanomaterials: basic properties, synthesis, and characterization[M]. Nano-sized multifunctional materials, 1-19(2019).

    [13] Zhu R D, Luo Z Y, Chen H W et al. Realizing Rec 2020 color gamut with quantum dot displays[J]. Optics Express, 23, 23680-23693(2015).

    [14] Jang E, Jang H. Review: quantum dot light-emitting diodes[J]. Chemical Reviews, 123, 4663-4692(2023).

    [15] Gensler M, Boeffel C, Kröpke S et al. 82-5: Late-news paper: high-resolution printing for future processing of RGB OLED displays[J]. SID Symposium Digest of Technical Papers, 49, 1117-1119(2018).

    [16] Xiang C Y, Wu L J, Lu Z Z et al. High efficiency and stability of ink-jet printed quantum dot light emitting diodes[J]. Nature Communications, 11, 1646(2020).

    [17] Singh M, Haverinen H M, Dhagat P et al. Inkjet printing: process and its applications[J]. Advanced Materials, 22, 673-685(2010).

    [18] de Gans B J, Duineveld P C, Schubert U S. Inkjet printing of polymers: state of the art and future developments[J]. Advanced Materials, 16, 203-213(2004).

    [19] Zheng H, Zheng Y N, Liu N L et al. All-solution processed polymer light-emitting diode displays[J]. Nature Communications, 4, 1971(2013).

    [20] Bai J Y, Hu H L, Yu Y S et al. Achieving high performance InP quantum dot light-emitting devices by using inkjet printing[J]. Organic Electronics, 113, 106705(2023).

    [21] Yang P H, Zhang L, Kang D J et al. High-resolution inkjet printing of quantum dot light-emitting microdiode arrays[J]. Advanced Optical Materials, 8, 1901429(2020).

    [22] Li H G, Duan Y Q, Shao Z L et al. QLEDs: high-resolution pixelated light emitting diodes based on electrohydrodynamic printing and coffee-ring-free quantum dot film[J]. Advanced Materials Technologies, 5, 2070059(2020).

    [23] Huang Chen S W, Shen C C, Wu T Z et al. Full-color monolithic hybrid quantum dot nanoring micro light-emitting diodes with improved efficiency using atomic layer deposition and nonradiative resonant energy transfer[J]. Photonics Research, 7, 416-422(2019).

    [24] Park J U, Hardy M, Kang S J et al. High-resolution electrohydrodynamic jet printing[J]. Nature Materials, 6, 782-789(2007).

    [25] Galliker P, Schneider J, Eghlidi H et al. Direct printing of nanostructures by electrostatic autofocussing of ink nanodroplets[J]. Nature Communications, 3, 890(2012).

    [26] Nguyen T C, Choi W S. Electrospray mechanism for quantum dot thin-film formation using an electrohydrodynamic jet and light-emitting device application[J]. Scientific Reports, 10, 11075(2020).

    [27] Hayati I, Bailey A I, Tadros T F. Mechanism of stable jet formation in electrohydrodynamic atomization[J]. Nature, 319, 41-43(1986).

    [28] Collins R T, Jones J J, Harris M T et al. Electrohydrodynamic tip streaming and emission of charged drops from liquid cones[J]. Nature Physics, 4, 149-154(2008).

    [29] Porter B F, Mkhize N, Bhaskaran H. Nanoparticle assembly enabled by EHD-printed monolayers[J]. Microsystems & Nanoengineering, 3, 17054(2017).

    [30] Wang H W, Zhang Y M, Liu Y et al. High-efficiency and high-resolution patterned quantum dot light emitting diodes by electrohydrodynamic printing[J]. Nanoscale Advances, 5, 1183-1189(2023).

    [31] Ji S C, Xue Q, Xie G H. In situ post-synthesis of luminescent Lewis acid-base adducts[J]. Chemical Communications, 59, 5030-5038(2023).

    [32] Kuang M X, Wang L B, Song Y L. Controllable printing droplets for high-resolution patterns[J]. Advanced Materials, 26, 6950-6958(2014).

    [33] Liu Y, Li F S, Xu Z W et al. Efficient all-solution processed quantum dot light emitting diodes based on inkjet printing technique[J]. ACS Applied Materials & Interfaces, 9, 25506-25512(2017).

    [34] Park J S, Kyhm J, Kim H H et al. Alternative patterning process for realization of large-area, full-color, active quantum dot display[J]. Nano Letters, 16, 6946-6953(2016).

    [35] Mei W H, Zhang Z Q, Zhang A D et al. High-resolution, full-color quantum dot light-emitting diode display fabricated via photolithography approach[J]. Nano Research, 13, 2485-2491(2020).

    [36] Hahm D, Lim J, Kim H et al. Direct patterning of colloidal quantum dots with adaptable dual-ligand surface[J]. Nature Nanotechnology, 17, 952-958(2022).

    [37] Kang H L, Kang J G, Won J K et al. Spatial light patterning of full color quantum dot displays enabled by locally controlled surface tailoring[J]. Advanced Optical Materials, 6, 1701335(2018).

    [38] Ko J, Chang J H, Jeong B G et al. Direct photolithographic patterning of colloidal quantum dots enabled by UV-crosslinkable and hole-transporting polymer ligands[J]. ACS Applied Materials & Interfaces, 12, 42153-42160(2020).

    [39] Yang J, Hahm D, Kim K et al. High-resolution patterning of colloidal quantum dots via non-destructive, light-driven ligand crosslinking[J]. Nature Communications, 11, 2874(2020).

    [40] Cho H, Pan J A, Wu H Q et al. Optical patterning: direct optical patterning of quantum dot light-emitting diodes via in situ ligand exchange[J]. Advanced Materials, 32, 2070346(2020).

    [41] Gao H J, Qie Y, Zhao H B et al. High-performance, high-resolution quantum dot light-emitting devices through photolithographic patterning[J]. Organic Electronics, 108, 106609(2022).

    [42] Zhao J Y, Chen L X, Li D Z et al. Large-area patterning of full-color quantum dot arrays beyond 1000 pixels per inch by selective electrophoretic deposition[J]. Nature Communications, 12, 4603(2021).

    [43] Li X X, Hu B B, Du Z L et al. Asymmetric wettability interfaces induced a large-area quantum dot microstructure toward high-resolution quantum dot light-emitting diodes[J]. ACS Applied Materials & Interfaces, 11, 28520-28526(2019).

    [44] Joo W J, Kyoung J, Esfandyarpour M et al. Metasurface-driven OLED displays beyond 10, 000 pixels per inch[J]. Science, 370, 459-463(2020).

    [45] Wang M S, Lin J, Hsiao Y C et al. Investigating underlying mechanism in spectral narrowing phenomenon induced by microcavity in organic light emitting diodes[J]. Nature Communications, 10, 1614(2019).

    [46] Kim H K, Cho S H, Oh J R et al. Deep blue, efficient, moderate microcavity organic light-emitting diodes[J]. Organic Electronics, 11, 137-145(2010).

    [47] Cok R S, Shore J D. Microcavity white-emitting OLED devices[J]. Journal of the Society for Information Display, 17, 617-627(2009).

    [48] Lee B W, Ju Y G, Hwang Y I et al. Micro-cavity design of bottom-emitting AMOLED with white OLED and RGBW color filters for 100% color gamut[J]. Journal of the Society for Information Display, 17, 151-157(2009).

    [49] Ishibashi T, Yamada J, Hirano T et al. Active matrix organic light emitting diode display based on “super top emission” technology[J]. Japanese Journal of Applied Physics, 45, 4392-4395(2006).

    [50] Chen L N, Qin Z Y, Chen S M. Ultrahigh resolution pixelated top-emitting quantum-dot light-emitting diodes enabled by color-converting cavities[J]. Small Methods, 6, 2101090(2022).

    [51] Choi M K, Yang J, Kang K et al. Wearable red-green-blue quantum dot light-emitting diode array using high-resolution intaglio transfer printing[J]. Nature Communications, 6, 7149(2015).

    [52] Nam T W, Kim M, Wang Y M et al. Thermodynamic-driven polychromatic quantum dot patterning for light-emitting diodes beyond eye-limiting resolution[J]. Nature Communications, 11, 3040(2020).

    [53] Kim B H, Nam S, Oh N et al. Multilayer transfer printing for pixelated, multicolor quantum dot light-emitting diodes[J]. ACS Nano, 10, 4920-4925(2016).

    [54] Meng T T, Zheng Y T, Zhao D L et al. Ultrahigh-resolution quantum-dot light-emitting diodes[J]. Nature Photonics, 16, 297-303(2022).

    [55] Shi L F, Meng L H, Jiang F et al. In situ inkjet printing strategy for fabricating perovskite quantum dot patterns[J]. Advanced Functional Materials, 29, 1903648(2019).

    [56] Jia S Q, Li G Y, Liu P et al. Highly luminescent and stable green quasi-2D perovskite-embedded polymer sheets by inkjet printing[J]. Advanced Functional Materials, 30, 1910817(2020).

    [57] Zhan W J, Meng L H, Shao C D et al. In situ patterning perovskite quantum dots by direct laser writing fabrication[J]. ACS Photonics, 8, 765-770(2021).

    [58] Moon H, Lee C M, Lee W et al. Stability of quantum dots, quantum dot films, and quantum dot light-emitting diodes for display applications[J]. Advanced Materials, 31, 1804294(2019).

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    Youjiang Pan, Lihua Lin, Kaiyu Yang, Wei Chen, Hailong Hu, Tailiang Guo, Fushan Li. Patterning Technology of High-Resolution Quantum Dots[J]. Acta Optica Sinica, 2024, 44(2): 0200004

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    Paper Information

    Category: Reviews

    Received: Aug. 21, 2023

    Accepted: Dec. 11, 2023

    Published Online: Jan. 12, 2024

    The Author Email: Li Fushan (fsli@fzu.edu.cn)

    DOI:10.3788/AOS231458

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