Contact‐Electrification‐Regulated Amino Acid for Improving Materials' Triboelectric Properties
Abstract
ABSTRACT The dual sustainability of energy and materials, especially through the use of green molecular building blocks, is of critical importance for next‐generation self‐powered systems. Here, we propose a contact‐electrification (CE)‐regulated molecular‐engineering strategy to actively manipulate interfacial charge configurations in amino acid‐based triboelectric films. Amino acid molecules intrinsically contain both electron‐donating amino groups and electron‐accepting carboxyl groups; however, a dominant exposure of amino groups is more favorable for positive triboelectric properties. By exploiting CE‐driven interfacial electrostatic fields, preferential outward enrichment of amino groups and simultaneous interfacial anchoring of carboxyl groups and side chains to the underlying metal electrode are achieved, thereby maximizing interfacial charge transfer efficiency with a 1.51‐fold enhancement. These findings demonstrate that molecular‐level interfacial regulation, rather than material substitution alone, represents a fundamentally new paradigm for advancing triboelectric energy conversion. Notably, this CE‐regulated molecular orientation mechanism originates from the amino and carboxyl groups shared by amino acids. This finding provides a molecular perspective for understanding and regulating interfacial charge transfer in a conserved donor–acceptor framework.
Article Details
Authors (8)
Yijun Hao
School of Electronic and Information Engineering Beijing Jiaotong University Beijing China
Jiayu Su
Xiaopeng Zhu
School of Electronic and Information Engineering Beijing Jiaotong University Beijing China
Yong Qin
Key Laboratory of Drug-Targeting and Drug Delivery System of the Education Ministry and Sichuan Province, Sichuan Engineering Laboratory for Plant-Sourced Drug, West China School of Pharmacy
Dong Yang
Hongke Zhang
School of Electronic and Information Engineering Beijing Jiaotong University Beijing China
Zhong Lin Wang
Center for High-Entropy Energy and Systems
Xiuhan Li