McCulley Daniel R, Senger Mitchell J, Bertoni Andrea, Perebeinos Vasili, Minot Ethan D
Department of Physics , Oregon State University , Corvallis , Oregon 97331 , United States.
Istituto Nanoscienze-CNR , Via Campi 213a , I-41125 Modena , Italy.
Nano Lett. 2020 Jan 8;20(1):433-440. doi: 10.1021/acs.nanolett.9b04151. Epub 2019 Dec 27.
Carbon nanotube (CNT) photodiodes have the potential to convert light into electrical current with high efficiency. However, previous experiments have revealed the photocurrent quantum yield (PCQY) to be well below 100%. In this work, we show that the axial electric field increases the PCQY of CNT photodiodes. Under optimal conditions, our data suggest PCQY > 100%. We studied, both experimentally and theoretically, CNT photodiodes at room temperature using optical excitation corresponding to the S, S, and S exciton resonances. The axial electric field inside the pn junction was controlled using split gates that are capacitively coupled to the suspended CNT. Our results give new insight into the photocurrent generation pathways in CNTs and the field dependence and diameter dependence of PCQY.
碳纳米管(CNT)光电二极管具有将光高效转换为电流的潜力。然而,先前的实验表明光电流量子产率(PCQY)远低于100%。在这项工作中,我们表明轴向电场会提高CNT光电二极管的PCQY。在最佳条件下,我们的数据表明PCQY>100%。我们在室温下通过对应于S、S和S激子共振的光激发,对CNT光电二极管进行了实验和理论研究。pn结内部的轴向电场通过与悬浮碳纳米管电容耦合的分裂栅极来控制。我们的结果为碳纳米管中的光电流产生途径以及PCQY的场依赖性和直径依赖性提供了新的见解。