TY - JOUR
T1 - Ion transport-triggered rapid flexible hydrovoltaic sensing
AU - Ge, Changlei
AU - Wang, Mingxu
AU - Zhou, Yuchen
AU - Wang, Yongfeng
AU - Zhao, Feijun
AU - Zhou, Cunkai
AU - Ma, Jun
AU - Wen, Feng
AU - Wang, Shuqi
AU - Liu, Mengyuan
AU - Wang, Shuanglan
AU - Liu, Yujie
AU - Shen, Hao
AU - Sun, Fuqin
AU - Li, Lianhui
AU - Zhang, Ting
N1 - Publisher Copyright:
© The Author(s) 2025.
PY - 2025/12
Y1 - 2025/12
N2 - The hydrovoltaic effect, based on interactions at the solid-liquid interface, offers a promising route for ion sensing. However, it is hampered by long response times, typically several minutes, due to slow ion diffusion equilibrium in nanochannels. Here, we demonstrate a rapid, flexible hydrovoltaic ion sensing strategy enabled by fast ion transport. Apart from the drag resistance reduction resulting from the ordered nanochannels and gravity elimination along the nanochannel direction, the liquid-driven effect concurrent with low-resistance shear flow at the liquid-liquid transport zone in semi-dry nanochannels are proposed to achieve an open-circuit voltage exceeding 4.0 V within 0.17 s, being two orders of magnitude faster than previous works with infiltration channels. Moreover, the obtained flexible hydrovoltaic device exhibits a wide ion sensing range of 10−7 to 100M, a maximum sensitivity up to −1.69 V dec-1 for NaCl, and distinctive multi-dimensional signals, enabling its application in selective ion sensing and sweat electrolyte monitoring.
AB - The hydrovoltaic effect, based on interactions at the solid-liquid interface, offers a promising route for ion sensing. However, it is hampered by long response times, typically several minutes, due to slow ion diffusion equilibrium in nanochannels. Here, we demonstrate a rapid, flexible hydrovoltaic ion sensing strategy enabled by fast ion transport. Apart from the drag resistance reduction resulting from the ordered nanochannels and gravity elimination along the nanochannel direction, the liquid-driven effect concurrent with low-resistance shear flow at the liquid-liquid transport zone in semi-dry nanochannels are proposed to achieve an open-circuit voltage exceeding 4.0 V within 0.17 s, being two orders of magnitude faster than previous works with infiltration channels. Moreover, the obtained flexible hydrovoltaic device exhibits a wide ion sensing range of 10−7 to 100M, a maximum sensitivity up to −1.69 V dec-1 for NaCl, and distinctive multi-dimensional signals, enabling its application in selective ion sensing and sweat electrolyte monitoring.
UR - https://www.scopus.com/pages/publications/105014872017
U2 - 10.1038/s41467-025-63549-1
DO - 10.1038/s41467-025-63549-1
M3 - 文章
C2 - 40883300
AN - SCOPUS:105014872017
SN - 2041-1723
VL - 16
JO - Nature Communications
JF - Nature Communications
IS - 1
M1 - 8110
ER -