TY - JOUR
T1 - Creation of Gradient Porous Structure and Surface Wettability Engineering of Boron Nanosheet-Silver Nanoparticle Hydrogel for Multifunctional Solar-Driven Water Management
AU - Zhang, Dinghao
AU - Zhang, Xiaohui
AU - Cao, Jiacheng
AU - He, Yi
AU - Zhang, Qiang
AU - Yang, Zhiwei
AU - Wang, Jian
AU - Tang, Hailun
AU - Li, Shaozhou
AU - Li, Hai
AU - Zhang, Jian
AU - Huang, Xiao
AU - Huang, Wei
N1 - Publisher Copyright:
© 2025 American Chemical Society.
PY - 2025
Y1 - 2025
N2 - Solar-driven water management such as water purification via evaporation and condensation has gained increasing attention as a promising solution to address the current issues of water and energy scarcity. Herein, a nanocomposite hydrogel incorporating Ag nanoparticle (NP)-loaded boron nanosheets within a polyacrylamide matrix was fabricated, which exhibited excellent solar light absorption efficiency and photothermal conversion capability. Under simulated 1-sun irradiation, the membrane demonstrated an evaporation rate of 4.572 kg m-2 h-1 when used with simulated seawater (∼3.5 wt % NaCl), and the cation concentration in the desalinated water was reduced by 3-4 orders of magnitude. The membrane’s excellent performance is attributed to its gradient porous structure with different wettability between the upper and lower surfaces, the plasmonic effect of Ag NPs, and the high water affinity of the boron nanosheets. Additionally, the fabricated membrane showed an excellent pollutant degradation capability and demonstrated potential applications in temperature sensing and thermoelectric generation.
AB - Solar-driven water management such as water purification via evaporation and condensation has gained increasing attention as a promising solution to address the current issues of water and energy scarcity. Herein, a nanocomposite hydrogel incorporating Ag nanoparticle (NP)-loaded boron nanosheets within a polyacrylamide matrix was fabricated, which exhibited excellent solar light absorption efficiency and photothermal conversion capability. Under simulated 1-sun irradiation, the membrane demonstrated an evaporation rate of 4.572 kg m-2 h-1 when used with simulated seawater (∼3.5 wt % NaCl), and the cation concentration in the desalinated water was reduced by 3-4 orders of magnitude. The membrane’s excellent performance is attributed to its gradient porous structure with different wettability between the upper and lower surfaces, the plasmonic effect of Ag NPs, and the high water affinity of the boron nanosheets. Additionally, the fabricated membrane showed an excellent pollutant degradation capability and demonstrated potential applications in temperature sensing and thermoelectric generation.
UR - http://www.scopus.com/inward/record.url?scp=85216898824&partnerID=8YFLogxK
U2 - 10.1021/acsmaterialslett.4c02462
DO - 10.1021/acsmaterialslett.4c02462
M3 - 文章
AN - SCOPUS:85216898824
SN - 2639-4979
SP - 845
EP - 853
JO - ACS Materials Letters
JF - ACS Materials Letters
ER -