Xiaohan He, Weiwen Xin, Pengbo Song, Shicheng Wan, T. Yan, Yongbo Deng, Liuyong Shi, Teng Zhou, Liping Wen
ABSTRACT Osmotic energy, a clean and renewable energy source, holds vast potential at the confluence of rivers and seas. 2D nanofluidic membranes offer a promising avenue for its efficient harvesting, yet their practical application is hampered by insufficient power density. Here we report a photoresponsive 2D nanofluidic membrane constructed by intercalating molybdenum disulfide with cotton nanofibers to form a stable composite structure. Under 50‐ and 500‐fold salinity gradients, the membrane achieves power densities of 6.48 and 13.57 W m − 2 , respectively. By introducing asymmetric illumination on the low‐concentration side, we create asymmetric temperature and charge gradients, which substantially enhance the osmotic energy conversion performance. Under a light intensity of 220 mW cm − 2 , the membrane achieves a power density of 9.93 W m − 2 , representing a 53% increase compared to non‐illuminated conditions. This enhancement is accompanied by a 62% rise in the short‐circuit current and an 8% increase in the open‐circuit voltage. In tests using real seawater, the membrane delivers a power density of 6.06 W m − 2 , a 67% improvement over the non‐illuminated condition. This study establishes a new strategy for highly efficient osmotic energy harvesting and demonstrates the potential of light‐assisted osmotic energy conversion in practical marine environments.