有机半导体
化学
堆积
双极扩散
p-n结
结晶
半导体
光电子学
四硫富瓦烯
制作
纳米技术
异质结
场效应晶体管
晶体管
材料科学
分子
有机化学
电子
电压
电气工程
医学
物理
工程类
替代医学
病理
量子力学
作者
Yajie Zhang,Huanli Dong,Qingxin Tang,Sunzida Ferdous,Feng Liu,Stefan C. B. Mannsfeld,Wenping Hu,Alejandro L. Briseño
摘要
This article focuses on the growth and transport properties of organic single-crystalline p-n junction nanoribbons. The development of organic nanoelectronics requires the fabrication of organic nanometer-sized p-n junctions for high-performance devices and integrated circuits. Here we demonstrate the formation of single-crystalline p-n junction nanoribbons of organic semiconductors by selective crystallization of copper hexadecafluorophthalocyanine (F(16)CuPc, n-type) on copper phthalocyanine (CuPc, p-type) single-crystalline nanoribbons. The crystallization of F(16)CuPc onto CuPc requires several parameters, including similar molecular structures, similar lattice constants, and pi-stacking along the nanoribbon axis. Ambipolar transport of the p-n junction nanoribbons was observed in field-effect transistors with balanced carrier mobilities of 0.05 and 0.07 cm(2) V(-1) s(-1) for F(16)CuPc and CuPc, respectively. A basic p-n junction nanoribbon photovoltaic device showed current rectification under AM 1.5 simulated light. The discrete p-n junction nanoribbons may serve as ideal systems for understanding basic charge-transport and photovoltaic behaviors at organic-organic interfaces.
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