材料科学
单层
有机太阳能电池
分子工程
咔唑
纳米技术
能量转换效率
活动层
阳极
有机半导体
二苯胺
基质(水族馆)
密度泛函理论
光电子学
偶极子
共轭体系
相(物质)
有机电子学
分子间力
工作(物理)
自组装单层膜
聚合物太阳能电池
图层(电子)
光活性层
有机发光二极管
工作职能
分子电子学
串联
半导体
能量转换
开尔文探针力显微镜
有机场效应晶体管
作者
Shijie Cheng,Meijia Chang,Xinbo Lv,Jin Wang,Shiyao Jin,Yun‐Tao Ding,Yamin Zhang,Wen‐Gang Cui,Xinqiang Wang,Zichao Shen,Zirui Wang,Jingman Xu,Guanghao Lu,Sai Bai,Wentao Liu,Xuying Liu,Lingxian Meng
摘要
ABSTRACT Organic solar cells (OSCs) critically depend on interfacial layers that simultaneously align energy levels, enable efficient charge extraction, and regulate active layer morphology; however, these functions are typically optimized independently. Here, we demonstrate that π‑conjugation of the terminal functional group in self‑assembled monolayers (SAMs) based anode interface layers (AILs) acts as a unified molecular strategy to coordinate these interdependent processes. Through a targeted molecular comparison, we designed two carbazole‑based SAMs, namely 2DPA‑PACz and 2Cz‑PACz, which share an identical phosphonic acid anchor but differ in functional group: one bearing a flexible diphenylamine unit, the other is a rigid, fully π‑conjugated carbazole extension. We show that the conjugated structure in 2Cz‑PACz simultaneously strengthens intermolecular π–π stacking, enlarges the molecular dipole and ITO substrate work function, enhances lateral hole transport, and promotes donor‑enriched vertical phase separation near the anode. As a result, OSCs employing 2Cz‐PACz as the AIL achieved a power conversion efficiency (PCE) of 20.64% with a short‐circuit current density ( J sc ) of 28.06 mA cm −2 and a superior fill factor (FF) of 81.74% in D18:L8‐BO:BTP‐eC9 based devices. Our work demonstrates that π‐conjugation of functional groups is a generalizable molecular strategy for engineering multifunctional organic semiconductor interfaces.
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