TY - JOUR
T1 - High-performance flexible triboelectric nanogenerator driven by the micro-capacitance effect of liquid metal
AU - Yu, Gang
AU - Liu, Lei
AU - Cai, Xinlei
AU - Cheng, Wenlong
AU - Zhou, Dongdong
AU - Li, Chun
AU - Yang, Chenxing
AU - Wu, Jun
AU - Shi, Yan
AU - Bi, Kedong
N1 - Publisher Copyright:
© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/8
Y1 - 2026/8
N2 - Liquid metal nanodroplets (LMND) offer exceptional potential for enhancing triboelectric nanogenerators (TENG) due to their intrinsic fluidity and high electrical conductivity, yet the underlying mechanism governing their performance enhancement remains elusive. Here, we propose a "pressure-induced deformation capacitance" mechanism, achieved by uniformly confining LMND within thermoplastic polyurethane (TPU) nanofibers. Under external pressure, the flexible TPU matrix induces controlled deformation of embedded LMND while effectively preventing their leakage, forming a dynamically optimized micro-capacitance network that significantly enhances charge storage capacity. Atomic force microscopy mechanical mapping confirms this effect is exclusive to low Young's modulus matrices. Electrical characterization revealed that the size dependence is not monotonic. Both the capacitive sensitivity of the composite and the TENG output follow a Lorentzian distribution, with the peak occurring when the ratio of the LMND size to the TPU fiber diameter reaches 120%. The optimized TENG exhibits a 28-fold voltage enhancement and a power density of 33.98 W/m². We further develop an origami-structured TENG (270 mg) capable of powering 100 LEDs and demonstrate a self-powered sensing system via functionally decoupled electrode design. This work establishes fundamental design principles for high-performance flexible energy devices and provides a framework for their application in advanced human–machine interfaces.
AB - Liquid metal nanodroplets (LMND) offer exceptional potential for enhancing triboelectric nanogenerators (TENG) due to their intrinsic fluidity and high electrical conductivity, yet the underlying mechanism governing their performance enhancement remains elusive. Here, we propose a "pressure-induced deformation capacitance" mechanism, achieved by uniformly confining LMND within thermoplastic polyurethane (TPU) nanofibers. Under external pressure, the flexible TPU matrix induces controlled deformation of embedded LMND while effectively preventing their leakage, forming a dynamically optimized micro-capacitance network that significantly enhances charge storage capacity. Atomic force microscopy mechanical mapping confirms this effect is exclusive to low Young's modulus matrices. Electrical characterization revealed that the size dependence is not monotonic. Both the capacitive sensitivity of the composite and the TENG output follow a Lorentzian distribution, with the peak occurring when the ratio of the LMND size to the TPU fiber diameter reaches 120%. The optimized TENG exhibits a 28-fold voltage enhancement and a power density of 33.98 W/m². We further develop an origami-structured TENG (270 mg) capable of powering 100 LEDs and demonstrate a self-powered sensing system via functionally decoupled electrode design. This work establishes fundamental design principles for high-performance flexible energy devices and provides a framework for their application in advanced human–machine interfaces.
KW - Electrospun nanofiber composite
KW - Flexible electronics
KW - Liquid metal nanodroplets
KW - Micro-capacitance
KW - Triboelectric nanogenerator
UR - https://www.scopus.com/pages/publications/105039748249
U2 - 10.1016/j.nanoen.2026.112061
DO - 10.1016/j.nanoen.2026.112061
M3 - 文章
AN - SCOPUS:105039748249
SN - 2211-2855
VL - 155
JO - Nano Energy
JF - Nano Energy
M1 - 112061
ER -