Enhancing the sustainability of interfacial evaporation to mitigate solar intermittency via phase change thermal storage DOI

Jingrui Lan,

Wenpeng Hong,

Changyuan Dong

et al.

Chemical Engineering Journal, Journal Year: 2024, Volume and Issue: unknown, P. 156855 - 156855

Published: Oct. 1, 2024

Language: Английский

Highly efficient solar-driven water evaporation through a cotton fabric evaporator with wettability gradient DOI
Yong-Gang Wu, Chao‐Hua Xue, Xiao-Jing Guo

et al.

Chemical Engineering Journal, Journal Year: 2023, Volume and Issue: 471, P. 144313 - 144313

Published: June 29, 2023

Language: Английский

Citations

53

High-performance Janus evaporator based on self-healing hydrogels for salt-rejecting interfacial solar desalination DOI
Jiehui Li, Jinmei He,

Jianwei Ge

et al.

Desalination, Journal Year: 2023, Volume and Issue: 564, P. 116812 - 116812

Published: July 6, 2023

Language: Английский

Citations

42

Solar-driven interfacial evaporation: Research advances in structural design DOI
Yuqing Sun,

Xinyan Tan,

Xin Yuan

et al.

Chemical Engineering Journal, Journal Year: 2024, Volume and Issue: 495, P. 153316 - 153316

Published: June 19, 2024

Language: Английский

Citations

19

Solar-driven interfacial evaporation for sustainable desalination: Evaluation of current salt-resistant strategies DOI
Yuqing Sun,

Xinyan Tan,

Bin Xiang

et al.

Chemical Engineering Journal, Journal Year: 2023, Volume and Issue: 474, P. 145945 - 145945

Published: Sept. 9, 2023

Language: Английский

Citations

40

Machine learning-based prediction and optimization of green hydrogen production technologies from water industries for a circular economy DOI
Mohammad Mahbub Kabir, Sujit Kumar Roy,

Faisal Alam

et al.

Desalination, Journal Year: 2023, Volume and Issue: 567, P. 116992 - 116992

Published: Sept. 16, 2023

Language: Английский

Citations

40

Dual-hydrophilic Janus evaporator for Long-term and efficient Bimode solar evaporation DOI
Chengcheng Li, Chaoyong Yang, Xinlong Tian

et al.

Chemical Engineering Journal, Journal Year: 2023, Volume and Issue: 461, P. 141954 - 141954

Published: Feb. 17, 2023

Language: Английский

Citations

35

Recent advances in solar-driven interfacial evaporation coupling systems: Energy conversion, water purification, and seawater resource extraction DOI
Xiaoyan Lu,

Chunxia Mu,

Yuxuan Liu

et al.

Nano Energy, Journal Year: 2023, Volume and Issue: 120, P. 109180 - 109180

Published: Dec. 9, 2023

Language: Английский

Citations

35

Emerging heat-localized solar distillation systems: Solar interfacial distillation VS photothermal membrane distillation DOI

Shuangchao Tian,

Xing Li, Jiawei Ren

et al.

Desalination, Journal Year: 2023, Volume and Issue: 572, P. 117147 - 117147

Published: Nov. 15, 2023

Language: Английский

Citations

33

Regulating ordered structure and multi-functions of zeolite aerogels for solar steam generation and heavy metal ion adsorption DOI

Shujing Zhao,

Xin Zhang,

Danzhu Zhu

et al.

Separation and Purification Technology, Journal Year: 2023, Volume and Issue: 324, P. 124588 - 124588

Published: July 21, 2023

Language: Английский

Citations

27

Nature‐Inspired Structure‐Engineered TiN/TiO2 Nanotubes Array Toward Solar Desalination Synergy with Photothermal‐Enhanced Degradation and Thermoelectric Generation DOI

Yuping Du,

Peng Liu, He Zhang

et al.

Advanced Functional Materials, Journal Year: 2023, Volume and Issue: 34(10)

Published: Nov. 27, 2023

Abstract Solar‐driven interfacial evaporation systems are considered as promising technology to alleviate the water scarcity crisis, yet lack of innovative evaporators obstructs further improvement energy utilization efficiency. Herein, inspired by mangrove, structure‐engineered design is utilized synthesis multi‐level reflection TiN/TiO 2 @carbon cloth (CC) nanotubes array. The hollowed TiO nanorods can promote expeditious transport, while array act localized surface plasmon resonance (LSPR)‐enhanced structure for solar harvesting. enhanced light absorption capability bionic nanostructure confirmed finite‐difference time‐domain (FDTD) simulations. Therefore, @CC‐3 exhibits high rate 2.02 kg m −2 h −1 under 1 illumination, which comparable or better than most fabric‐based evaporators. When applied in wide acid–base (pH 1–13) and salinity range (8–100 ‰) over 15 days, displays outstanding durability. Furthermore, expand application scope elaborate nanostructure, photothermal‐enhanced photocatalysis thermoelectricity generation applications evaluated, these new functionalities integrated into solar‐driven desalination system. outdoor device daily yield 10.89 , synergy with maximum 200.7 mV output voltage dye degradation efficiency, demonstrating flexible multi‐functional according various requirements.

Language: Английский

Citations

24