Du Qianqian, Qin Shuchao, Wang Zhifeng, Gan Yuquan, Zhang Yuting, Fan Linsheng, Liu Yunlong, Li Shuhong, Dong Ruixin, Liu Cailong, Wang Wenjun, Wang Fengqiu
Key Laboratory of Optical Communication Science and Technology of Shandong Province, School of Physical Science and Information Engineering, Liaocheng University, Liaocheng 252059, China.
School of Electronic Science and Engineering and Key Laboratory of Intelligent Optical Sensing and Manipulation, Ministry of Education, Nanjing University, Nanjing 210093, China.
ACS Appl Mater Interfaces. 2021 Dec 8;13(48):57735-57742. doi: 10.1021/acsami.1c18862. Epub 2021 Nov 29.
Rubrene single crystals have received a lot of attention for their great potential in electronic and wearable nanoelectronics due to their high carrier mobility and excellent flexibility. While they exhibited remarkable electrical performances, their intrinsic potential as photon detectors has not been fully exploited. Here, we fabricate a sensitive and ultrafast organic phototransistor based on rubrene single crystals. The device covers the ultraviolet to visible range (275-532 nm), and the responsivity and detectivity can reach up to ∼4000 A W and 10 jones at 532 nm, respectively. Furthermore, the response times are highly gate-tunable down to sub-90 μs, and the cutoff frequency is ∼4 kHz, which is one of the fastest organic material-based phototransistors reported so far. Equally important is that the fabricated device exhibits stable light detection ability even after 8 months, indicating great long-term stability and excellent environmental robustness. The results suggest that the high-quality rubrene single crystal may be a promising material for future flexible optoelectronics with its intrinsic mechanical flexibility.
红荧烯单晶因其高载流子迁移率和出色的柔韧性,在电子和可穿戴纳米电子学领域具有巨大潜力,因而备受关注。尽管它们展现出了卓越的电学性能,但其作为光子探测器的内在潜力尚未得到充分开发。在此,我们基于红荧烯单晶制造了一种灵敏且超快的有机光电晶体管。该器件覆盖紫外到可见光范围(275 - 532纳米),在532纳米处的响应度和探测率分别可达约4000 A/W和10琼斯。此外,响应时间可通过栅极高度调谐至低于90微秒,截止频率约为4千赫兹,这是迄今为止报道的基于有机材料的最快光电晶体管之一。同样重要的是,所制造的器件即使在8个月后仍表现出稳定的光探测能力,表明其具有出色的长期稳定性和环境耐受性。结果表明,高质量的红荧烯单晶凭借其固有的机械柔韧性,可能是未来柔性光电子学的一种有前途的材料。