TY - JOUR
T1 - Passive Cooling Enabled Enduring Electricity Generation with a Single Water Droplet under Solar Exposure
AU - Huang, Jie
AU - Geng, Shining
AU - Huang, Xiuying
AU - Zeng, Xiantao
AU - Xu, Dawei
AU - Guo, Zhenghua
AU - Xi, Senliang
AU - Sun, Yuze
AU - Wang, Shan
AU - Wang, Qian You
AU - Ma, Qinglang
AU - Wang, Bo
N1 - Publisher Copyright:
© 2026 American Chemical Society
PY - 2026/2/10
Y1 - 2026/2/10
N2 - Evaporative electricity generation (EEG) is a fast-emerging technology for sustainable energy supply by converting low-grade thermal energy from the surrounding environment. Unfortunately, all current EEG nanogenerators quickly cease functioning once they are disengaged from bulk water bodies, e.g., rivers and lakes, greatly limiting their wider geographical applicability. Realizing enduring electricity generation with only a single water droplet is greatly desired for their practical deployment. However, under practical outdoor scenarios, the inevitable solar exposure parches the device to inhibit the electricity generation ability due to the solar-thermal effect. Herein, we report a strategy that integrates the passive cooling capability and electricity harvesting ability into a bifunctional ceramic. The ceramic possesses a unidirectional and hierarchical porous structure that not only regulates water transport but also enhances sunlight scattering and thermal radiative emissivity. The self-cooling effect keeps the device constantly at a subambient temperature even under strong solar exposure with a peak temperature reduction of 14.2 °C. As a result, the ceramic-based nanogenerator can produce a voltage of 2.1 V for a long duration of 36 min with only 100 μL of water under outdoor solar intensity of 780 W m–2. This work demonstrates the passive cooling-enabled enduring electricity generation device with only a single droplet, addressing the critical challenge in the practical viability of EEG technology.
AB - Evaporative electricity generation (EEG) is a fast-emerging technology for sustainable energy supply by converting low-grade thermal energy from the surrounding environment. Unfortunately, all current EEG nanogenerators quickly cease functioning once they are disengaged from bulk water bodies, e.g., rivers and lakes, greatly limiting their wider geographical applicability. Realizing enduring electricity generation with only a single water droplet is greatly desired for their practical deployment. However, under practical outdoor scenarios, the inevitable solar exposure parches the device to inhibit the electricity generation ability due to the solar-thermal effect. Herein, we report a strategy that integrates the passive cooling capability and electricity harvesting ability into a bifunctional ceramic. The ceramic possesses a unidirectional and hierarchical porous structure that not only regulates water transport but also enhances sunlight scattering and thermal radiative emissivity. The self-cooling effect keeps the device constantly at a subambient temperature even under strong solar exposure with a peak temperature reduction of 14.2 °C. As a result, the ceramic-based nanogenerator can produce a voltage of 2.1 V for a long duration of 36 min with only 100 μL of water under outdoor solar intensity of 780 W m–2. This work demonstrates the passive cooling-enabled enduring electricity generation device with only a single droplet, addressing the critical challenge in the practical viability of EEG technology.
KW - bifunctional material
KW - evaporative electricity generation
KW - halloysite
KW - passive daytime cooling
KW - porous material
UR - https://www.scopus.com/pages/publications/105029844514
U2 - 10.1021/acsnano.5c17802
DO - 10.1021/acsnano.5c17802
M3 - Article
C2 - 41617610
AN - SCOPUS:105029844514
SN - 1936-0851
VL - 20
SP - 4331
EP - 4342
JO - ACS Nano
JF - ACS Nano
IS - 5
ER -