TY - JOUR
T1 - Quantifying the Triboelectric Series of Liquid Phase Materials
AU - Zhang, Hengfei
AU - Zhang, Ying
AU - He, Peng
AU - Tian, Xiaoyong
AU - Jiang, Lihong
AU - He, Maogang
AU - Liu, Xiangyang
AU - Chen, Siyuan
AU - Pang, Dongxiao
AU - Kang, Guiqiong
AU - Zou, Haiyang
AU - Wang, Zhong Lin
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - Contact electrification has been extensively investigated and harnessed, yet quantifying the triboelectrification capacity of liquid phase materials remains elusive due to their non-fixed shape and complex flow dynamics. Here, we report a novel gas-regulated flow strategy to stabilize liquid columns, effectively decoupling fluid kinetics from electrification processes. By optimizing material selection, electrode configurations, and flow regimes, we established a standardized triboelectric series encompassing 50 diverse liquids, including organic solvents and ionic solutions. Our results reveal that liquid-phase triboelectrification is synergistically governed by molecular functional groups, ionic species, and concentrations. Specifically, hydroxyl groups and dilute ion concentrations promote charge transfer, whereas alkyl groups and excessive ions exert a suppressive effect. This study elucidates that liquid-solid electrification arises from a sophisticated interplay of electron transfer, molecular polarization, ion adsorption/screening, which collectively dictate charge redistribution. By providing a quantitative triboelectric matrix, this work facilitates the design of high-efficiency energy harvesters and safer industrial liquid-handling systems, advancing the fundamental understanding of liquid-interface physics.
AB - Contact electrification has been extensively investigated and harnessed, yet quantifying the triboelectrification capacity of liquid phase materials remains elusive due to their non-fixed shape and complex flow dynamics. Here, we report a novel gas-regulated flow strategy to stabilize liquid columns, effectively decoupling fluid kinetics from electrification processes. By optimizing material selection, electrode configurations, and flow regimes, we established a standardized triboelectric series encompassing 50 diverse liquids, including organic solvents and ionic solutions. Our results reveal that liquid-phase triboelectrification is synergistically governed by molecular functional groups, ionic species, and concentrations. Specifically, hydroxyl groups and dilute ion concentrations promote charge transfer, whereas alkyl groups and excessive ions exert a suppressive effect. This study elucidates that liquid-solid electrification arises from a sophisticated interplay of electron transfer, molecular polarization, ion adsorption/screening, which collectively dictate charge redistribution. By providing a quantitative triboelectric matrix, this work facilitates the design of high-efficiency energy harvesters and safer industrial liquid-handling systems, advancing the fundamental understanding of liquid-interface physics.
KW - contact electrification
KW - liquid materials
KW - standardized measurement
KW - triboelectric series
KW - triboelectrification
UR - https://www.scopus.com/pages/publications/105039697584
U2 - 10.1002/adma.73450
DO - 10.1002/adma.73450
M3 - 文章
AN - SCOPUS:105039697584
SN - 0935-9648
JO - Advanced Materials
JF - Advanced Materials
ER -