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◆ Nature Communications2026-01-28· Materials science

Synergistic MOF-based composite enabling significant solar-to-water generation enhancement in climate-resilient AWH

Zhao Shao, Xi Feng, Primož Poredoš, Boxiong Jiang, Wen-Yu Su, Haotian Lv, Zhi‐Shuo Wang, Hongbin Wang, Shuai Du, D G Zhou, Jie‐Peng Zhang, R. Z. Wang

原始摘要(英文原文)· Original abstract
Solar-driven atmospheric water harvesting (SAWH) holds significant promise for decentralized water supply. However, its widespread application is hindered by two critical limitations: underutilization of high-humidity adsorption windows during nighttime and insufficient desorption during daytime due to the high desorption temperature requirement of conventional sorbents. To overcome these challenges, this study proposes a composite sorbent strategy by synergistically combining the low enthalpy of vaporization of LiCl with the robust adsorption capacity and stability of a metal‒organic framework (MOF, specifically Ni2Cl2(BTDD), H2BTDD = bis(1H−1,2,3-triazolo[4,5-b],[4′,5′-i])dibenzo[1,4]dioxin). This design leverages the complementary properties to achieve lower desorption temperatures (e.g., < 60 oC in device level) compared to typical MOF-based systems (usually >90 oC in device level), thereby significantly reducing the energy consumption for desorption. Concurrently, the composite exhibits extended adsorption duration within the high-humidity window. Field validation across diverse climatic regions demonstrates the composite’s exceptional wide-range environmental stability and performance. The resulting SAWH device achieves a solar-to-water generation improvement up to 91% in a continental field test. This work presents a generalizable and effective pathway for enhancing SAWH performance through synergistic material engineering, enabling efficient water production and thermal control under varying environmental conditions. A composite sorbent combining LiCl with MOF material Ni2Cl2(BTDD) enables high water uptakes while low desorption temperature, achieving solar-driven water yield over 1 L m‒2 day‒1, which has been confirmed in field tests even across diverse regions.
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Synergistic MOF-based composite enabling significant solar-to-water generation enhancement in climate-resilient AWH — 科研速览 Science Skim