光电二极管
材料科学
光电子学
量子点
制作
光学
曲率半径
弹性体
多路复用
曲率
计算机科学
物理
替代医学
平均曲率
复合材料
病理
流量平均曲率
电信
医学
数学
几何学
作者
Jaeyong Song,Junhee Kim,Jiyong Yoon,Ja Hoon Koo,Hyunjin Jung,Kyumin Kang,Sung‐Hyuk Sunwoo,Sun-Ho Yoo,Hogeun Chang,Jinwoung Jo,Woonhyuk Baek,Sang-Hwa Lee,Min‐Cheol Lee,Hye Jin Kim,Mikyung Shin,Young Jin Yoo,Young Min Song,Taeghwan Hyeon,Dae‐Hyeong Kim,Donghee Son
标识
DOI:10.1038/s41565-022-01160-x
摘要
High-performance photodetecting materials with intrinsic stretchability and colour sensitivity are key requirements for the development of shape-tunable phototransistor arrays. Another challenge is the proper compensation of optical aberrations and noises generated by mechanical deformation and fatigue accumulation in a shape-tunable phototransistor array. Here we report rational material design and device fabrication strategies for an intrinsically stretchable, multispectral and multiplexed 5 × 5 × 3 phototransistor array. Specifically, a unique spatial distribution of size-tuned quantum dots, blended in a semiconducting polymer within an elastomeric matrix, was formed owing to surface energy mismatch, leading to highly efficient charge transfer. Such intrinsically stretchable quantum-dot-based semiconducting nanocomposites enable the shape-tunable and colour-sensitive capabilities of the phototransistor array. We use a deep neural network algorithm for compensating optical aberrations and noises, which aids the precise detection of specific colour patterns (for example, red, green and blue patterns) both under its flat state and hemispherically curved state (radius of curvature of 18.4 mm).
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