Jiang Bing-Huang, Hsiao Fu-Chun, Lin Yan-Ru, Lin Che-Hsien, Shen Yu An, Hsu Yi-Yang, Lee Po-Han, Su Yu-Wei, Lu Huei-Ru, Lin Chi-Wei, Chan Choon Kit, Chen Chih-Ping
Department of Materials Engineering, Ming Chi University of Technology, New Taipei City243, Taiwan.
Taipei Fuhsing Private School, Taipei106, Taiwan.
ACS Appl Mater Interfaces. 2023 Mar 1;15(8):10907-10917. doi: 10.1021/acsami.2c20527. Epub 2023 Jan 26.
Near-infrared (NIR) small-molecule acceptors that absorb at wavelengths of up to 1000 nm are attractive for applications in organic photodetectors (OPDs) and biometrics. In this study, we incorporated IEICO-4F as the third component for PffBT4T-2OD:PCBM-based OPDs to provide an efficient NIR response while greatly suppressing the leakage current at reverse bias. By varying the blend ratio and thickness (250-600 nm), we obtained an NIR OPD displaying an ultralow dark-current density ( = 2.62 nA cm), ultrahigh detectivity [* = 7.2 × 10 Jones (850 nm)], high sensitivity, and photoresponsivity covering the region from the ultraviolet to the NIR. We used tapping-mode atomic force microscopy, optical microscopy, grazing-incidence wide-angle X-ray scattering, and contact angle measurements to investigate the effect of IEICO-4F on the performance of the ternary OPDs. The low compatibility of PffBT4T-2OD and IEICO-4F, originating from weak intermolecular interactions, allowed us to manipulate the degree of phase separation between the donor and acceptor in the ternary blends, leading to an optimized blend morphology featuring efficient charge separation, transport, and collection. To demonstrate its applicability, we integrated our OPD with two light-emitting diodes and used the system for precisely calculated transmissive pulse oximetry.
吸收波长高达1000 nm的近红外(NIR)小分子受体在有机光电探测器(OPD)和生物识别领域具有吸引力。在本研究中,我们将IEICO-4F作为基于PffBT4T-2OD:PCBM的OPD的第三组分,以提供高效的近红外响应,同时在反向偏压下极大地抑制漏电流。通过改变混合比例和厚度(250 - 600 nm),我们获得了一种近红外OPD,其显示出超低暗电流密度( = 2.62 nA cm)、超高探测率[* = 7.2 × 10琼斯(850 nm)]、高灵敏度以及覆盖从紫外到近红外区域的光响应性。我们使用轻敲模式原子力显微镜、光学显微镜、掠入射广角X射线散射和接触角测量来研究IEICO-4F对三元OPD性能的影响。PffBT4T-2OD和IEICO-4F的低兼容性源于弱分子间相互作用,这使我们能够控制三元共混物中给体和受体之间的相分离程度,从而形成具有高效电荷分离、传输和收集功能的优化共混形态。为了证明其适用性,我们将我们的OPD与两个发光二极管集成,并将该系统用于精确计算的透射式脉搏血氧测定。