Flexible and Stretchy Organic Photodetectors for Wearable Sensing †

可穿戴计算机 光电探测器 可穿戴技术 可扩展性 计算机科学 纳米技术 数码产品 光电二极管 可伸缩电子设备 材料科学 光伏系统 制作 结构健康监测 有机太阳能电池 耐久性 钥匙(锁) 光子学 块(置换群论) 环境友好型 柔性电子器件 机械工程 软质材料
作者
Yimin Yang,Kai Zhang,Vakhobjon Kuvondikov,Yunfeng Deng,Long Ye
出处
期刊:Chinese Journal of Chemistry [Wiley]
卷期号:44 (6): 869-880 被引量:3
标识
DOI:10.1002/cjoc.70410
摘要

Comprehensive Summary Photodetectors (PDs) are core components in imaging, health monitoring and environmental sensing systems. As electronics become increasingly integrated into wearable, soft and bio‐interfacing platforms, there is growing demand for photodetectors that combine mechanical stretchability, low power consumption and optical sensitivity. Unlike strain‐accommodating strategies using serpentine metal traces or rigid islands, intrinsically flexible and stretchable photodetectors are constructed from fully deformable active layers, electrodes and substrate. This ensures seamless mechanical conformity and long‐term biomechanical compatibility, enabling stable light detection even under stretching, bending, or twisting, thereby meeting the requirements of on‐skin, soft robotic, and subdermal applications. Recent advances in materials design, from stretchable conjugated polymers to conductive, deformable electrodes, have greatly improved the performance and durability of OPDs. Meanwhile, progress in device engineering, including solution‐based processing, scalable fabrication, and array integration, has facilitated the construction of high‐resolution stretchable photodiode arrays for multimodal sensing. These innovations collectively broaden the functional landscape of OPDs. This article highlights recent innovations in flexible and stretchable organic photodetectors, focusing on material design, morphology control, fabrication strategies, and emerging applications in wearable optoelectronics. Particularly, we analyze how molecular engineering approaches enhance both mechanical compliance and optoelectronic properties, discuss manufacturing techniques that enable scalable production, and highlight implementation examples in health monitoring, artificial vision, and human‐machine interfaces. Finally, we address key challenges and future research directions, including the development of sustainable processing methods, the creation of next‐generation wearable optoelectronic systems with enhanced functionality, and the establishment of standardized measurement protocols for accurately characterizing the performance of stretchable OPDs under operational conditions. Key Scientists Rogers and co‐workers first adhered photodetectors to human skin, introducing the concept of epidermal electronics. [1] Building on this vision, Someya's group in 2018 fabricated self‐powered ultraflexible sensors capable of conforming not only to the skin but also to dynamic organs such as the heart. [11] In 2021, they further integrated multiple photodiodes to realize a self‐powered photoplethysmography (PPG) sensor. [47] In parallel, Kippelen and colleagues in 2020 employed the conventional poly(3‐hexylthiophene‐2,5‐diyl) (P3HT): Indene‐C60 bisadduct (ICBA) active layer system to fabricate large‐area flexible OPDs, achieving performance comparable to silicon photodetectors in all aspects except response time. [10] In 2022, Yu et al. proposed an innovative device fabrication strategy in which the photoactive film formed a micromesh structure, thereby enhancing intrinsic stretchability without compromising electrical performance. [13] In the following year, an elastomer–semiconductor–elastomer stacked configuration was reported, enabling stretchable OPDs suitable for imaging applications. [58] Progress continued in 2024, Lin et al. utilized colloid processing to realize high‐performance flexible OPDs, demonstrating superior in‐situ detection of trace pollutants in water. [60] In 2024, Huang's group regulated the molecular ordering of small‐molecule acceptors to extend OPD applications to large‐area flexible devices and by 2025 advanced molecular engineering of acceptors to further broaden the application space of flexible OPDs across diverse fields. [18‐19] Chen's group in 2024 significantly advanced the optical communication application of flexible OPDs by introducing a narrow‐band acceptor. [56] In the following year, relying on high‐performance flexible visible‐blind near‐infrared organic photodetectors, a flexible photonic contactless human‐machine interface has been developed, which significantly expands the applications of flexible OPDs. [80]
最长约 10秒,即可获得该文献文件

科研通智能强力驱动
Strongly Powered by AbleSci AI
科研通是完全免费的文献互助平台,具备全网最快的应助速度,最高的求助完成率。 对每一个文献求助,科研通都将尽心尽力,给求助人一个满意的交代。
实时播报
AbOO发布了新的文献求助10
刚刚
阿晏完成签到 ,获得积分10
1秒前
1秒前
2秒前
杨天天发布了新的文献求助10
2秒前
3秒前
南风知我意完成签到,获得积分0
3秒前
星辰大海应助wulin314采纳,获得10
5秒前
CL完成签到 ,获得积分10
6秒前
MQRR发布了新的文献求助10
6秒前
Ono完成签到,获得积分10
7秒前
星辰大海应助lshcraft采纳,获得10
7秒前
wqh发布了新的文献求助10
7秒前
hanjresearch发布了新的文献求助10
7秒前
lili完成签到,获得积分10
8秒前
ys完成签到,获得积分10
10秒前
11秒前
11秒前
12秒前
己凡完成签到,获得积分10
13秒前
丘比特应助愉快啊啊采纳,获得10
14秒前
小马甲应助王木木采纳,获得10
14秒前
ffw1发布了新的文献求助10
14秒前
WaterBru完成签到,获得积分10
14秒前
丘比特应助无机盐采纳,获得10
16秒前
17秒前
小高完成签到 ,获得积分10
17秒前
SHIMMER发布了新的文献求助10
17秒前
zhiyuan完成签到,获得积分10
18秒前
18秒前
阴暗蘑菇完成签到 ,获得积分10
19秒前
hanjresearch完成签到,获得积分10
21秒前
酷波er应助曾经很有自信采纳,获得10
21秒前
笨笨不乐完成签到,获得积分10
21秒前
22秒前
22秒前
22秒前
LUAN完成签到,获得积分10
22秒前
22秒前
猪猪hero发布了新的文献求助10
23秒前
高分求助中
(应助此贴封号)【重要!!请各用户(尤其是新用户)详细阅读】【科研通的精品贴汇总】 10000
Principles of town planning: translating concepts to applications 1000
Navigating Normative Orders. Interdisciplinary Perspectives 800
1 Peter and Christ's Descent to the Dead in Its Early Christian Reception 700
Organizational Behavior 510
Management and the Arts 510
Matrix Methods in Data Mining and Pattern Recognition Second Edition 510
热门求助领域 (近24小时)
化学 材料科学 医学 生物 纳米技术 工程类 有机化学 化学工程 生物化学 计算机科学 内科学 物理 复合材料 催化作用 细胞生物学 无机化学 光电子学 物理化学 电极 基因
热门帖子
关注 科研通微信公众号,转发送积分 7740600
求助须知:如何正确求助?哪些是违规求助? 9289208
关于积分的说明 20194548
捐赠科研通 7318799
什么是DOI,文献DOI怎么找? 3306487
关于科研通互助平台的介绍 2458764
邀请新用户注册赠送积分活动 2316612