材料科学
光刻
纳米技术
光电子学
纳米尺度
钙钛矿(结构)
平版印刷术
光子学
光致发光
可扩展性
神经形态工程学
溶解过程
制作
等离子体子
薄膜
相容性(地球化学)
灵敏度(控制系统)
作者
Dante Ahn,Minz Lee,Young-Soo Jang,Gun Young Jung,Yusin Pak
标识
DOI:10.1002/adom.202502624
摘要
Abstract Halide perovskites are promising materials for future optoelectronic and display systems. They combine strong optical absorption, mechanical flexibility, low‐cost solution processing, and tunable band structures. To serve emerging applications such as high‐resolution AR/VR micro displays, optical logic gates, and neuromorphic vision processors, patterning methods should deliver sub‐100 nm resolution, more than 99% photoluminescence retention in multilayer stacks, and alignment precision better than 500 nm. Sensitivity to polar solvents, heat, and chemical treatments limits compatibility with conventional photolithography and often leads to degradation during fabrication. This review surveys recent patterning strategies that address these issues. The discussion centers on four criteria: solvent compatibility, resolution, alignment accuracy, and process methodology. Mask‐based approaches such as direct photolithography and mold‐guided growth are compared with mask‐free routes, including inkjet printing and laser‐induced crystallization. Emerging directions include perovskite‐compatible photoresists and hybrid schemes that couple nanoscale precision with wafer‐scale scalability, outlining a path toward high‐density, multifunctional, and vision‐adaptive optoelectronic platforms.
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