海水
盐(化学)
原位
碳纤维
蒸发
环境科学
溶解有机碳
碳纳米管
环境化学
金属
金属有机骨架
化学工程
环境工程
材料科学
化学
纳米技术
海洋学
地质学
有机化学
冶金
工程类
物理
吸附
复合数
复合材料
热力学
作者
Muhammad Sohail Asghar,Muhammad Sultan Irshad,Naila Arshad,Maryam Al Huwayz,Muneerah Alomar,Ghazala Maqsood,Muhammad Atif Ali,Uzma Ghanzanfar,Muhammad Sabir,Jinhua Li,Van‐Duong Dao,Nang Xuan Ho,Xianbao Wang,Zhiguang Guo
出处
期刊:Water Research
[Elsevier BV]
日期:2025-04-12
卷期号:282: 123643-123643
被引量:37
标识
DOI:10.1016/j.watres.2025.123643
摘要
• Introducing a 3D umbrella-shaped solar evaporator constructed by ZIF-67 nanocubes which is interconnected with CNTs . • Achieving evaporation rate of 2.1 kg m -2 h -1 with a 99.9 % rejection efficacy, addressing the demand for freshwater sustainably. • The hybrid solar evaporator concentrates and recovers salts from brine, minimizing waste and environmental impact. Innovative solutions are needed to meet global water demand and to ensure the sustainable management of saline water resources. Indeed, solar-driven interfacial evaporation systems hold great environmental significance as they offer a sustainable and eco-friendly solution to several pressing issues. Herein, a 3D umbrella-shaped hybrid solar evaporator is innovatively developed by functionalized carbon nanotubes interlinked with metal-organic framework (MOF) nanocubes ZIF-67@CNT is sequentially anchored on cotton fabric with a centralized water supply. Combining these two materials results in a remarkable synergy, where the MOFs may trap and release water molecules (5.75 gg -1 ), and the CNTs facilitate broadband solar absorption (95 %). The hybrid solar evaporator endows solitary heat accumulation (49.5 °C) under 1k Wm -2 solar irradiance owing to its effective thermal management supported by centralized wicks-inspired water supply as compared to the conventional direct contact structures. More importantly, an efficient evaporation rate (2.1 kg m -2 h -1 ) was achieved, along with 99.9 % rejection efficacy and sustained reproducibility under natural conditions. Meanwhile, the system effectively concentrates and recovers salts from the brine stream, reducing waste and minimizing environmental impact. The sustainable utilization of solar energy reduces the energy cost associated with desalination, contributing to the economic viability of this technology. 3D hybrid solar evaporator reports in-situ freshwater and salt collection followed by a zero-liquid discharge strategy by configuring an evaporation structure. More importantly, an efficient evaporation rate (2.1 kg m -2 h -1 ) was achieved along with 99.9 % rejection efficacy. Meanwhile, the system effectively concentrates and recovers salts from the brine stream, reducing waste and minimizing environmental impact.
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