化学
生物电子学
异质结
过渡金属
生物传感器
光电化学
光电子学
纳米技术
载流子
晶体管
调制(音乐)
场效应晶体管
带隙
电子能带结构
数码产品
生物界面
表面光电压
电化学
电极
作者
Feng‐Zao Chen,Lin Zhang,Yuan Gao,Lu Hou,Shu Xu,Bing Sun,Deman Han
标识
DOI:10.1021/acs.analchem.5c04325
摘要
Organic photoelectrochemical transistors (OPECTs) represent an emerging bioelectronic platform synergizing photoelectrochemical processes with organic electrochemical transistors for amplified transduction of light-matter-bio interactions. However, OPECT performance remains fundamentally constrained by inefficient carrier dynamics at the photogate. To address this, we develop a novel transition metal dichalcogenide (TMD)-based heterojunction photogate by integrating FeSe2 with ZnIn2S4, leveraging band alignment engineering to optimize interfacial charge separation. This work pioneers a H2O2-triggered dynamic band modulation strategy within a TMD heterojunction for OPECT biosensing. Surface oxidation of FeSe2 by H2O2 disrupts the original band alignment, forming a new charge migration pathway and enhancing the photovoltage of the gate. Such a change restructures the control behavior of the transistor and ultimately amplifies the channel current response. Linking a prostate-specific antigen (PSA)-targeted proteolytic peptide system and the biological generation of H2O2, such a phenomenon was correlated to PSA concentration with good performance in terms of selectivity and sensitivity. This study not only demonstrates the first TMD heterojunction-engineered OPECT for biosensing but also establishes a versatile framework for advancing next-generation bioelectronics through target-responsive interfacial band engineering.
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