Carbon quantum dots modified MoS2 for high-efficiency and long-endurance persulfate activation: Enhanced electron transfer and piezoelectricity DOI
Shule Zhang, Zhemi Xu,

Tianhao Ji

et al.

Separation and Purification Technology, Journal Year: 2024, Volume and Issue: 353, P. 128148 - 128148

Published: May 27, 2024

Language: Английский

Piezoelectric materials and techniques for environmental pollution remediation DOI

Juanlong Li,

Xiaolu Liu, Guixia Zhao

et al.

The Science of The Total Environment, Journal Year: 2023, Volume and Issue: 869, P. 161767 - 161767

Published: Jan. 23, 2023

Language: Английский

Citations

109

Recent advancements in the use of novel piezoelectric materials for piezocatalytic and piezo-photocatalytic applications DOI
Hongjuan Zheng, Yulong Wang,

Jinsong Liu

et al.

Applied Catalysis B Environment and Energy, Journal Year: 2023, Volume and Issue: 341, P. 123335 - 123335

Published: Sept. 28, 2023

Language: Английский

Citations

106

Design strategies and effect comparisons toward efficient piezocatalytic system DOI
Chunyang Wang, Cheng Hu, Fang Chen

et al.

Nano Energy, Journal Year: 2022, Volume and Issue: 107, P. 108093 - 108093

Published: Dec. 15, 2022

Language: Английский

Citations

89

Rational electron tunning of magnetic biochar via N, S co-doping for intense tetracycline degradation: Efficiency improvement and toxicity alleviation DOI
Wenbo Wu, Rupeng Wang, Haixing Chang

et al.

Chemical Engineering Journal, Journal Year: 2023, Volume and Issue: 458, P. 141470 - 141470

Published: Jan. 16, 2023

Language: Английский

Citations

77

Fundamentals, advances and perspectives of piezocatalysis: A marriage of solid-state physics and catalytic chemistry DOI Creative Commons
Nan Meng, Wei Liu,

Ruyu Jiang

et al.

Progress in Materials Science, Journal Year: 2023, Volume and Issue: 138, P. 101161 - 101161

Published: July 16, 2023

Piezocatalysis, an evolving catalytic technology built on the piezoelectric properties of catalysts, breaks down barrier between mechanical energy and chemical energy. The potential difference that arises from deformation a material is commonly termed 'piezopotential'. Piezopotential has been demonstrated to facilitate manipulation band structure and/or charge carrier separation. Despite significant efforts design materials understand mechanism piezoelectrically enhanced chemistry through semiconductor physics, there remains opportunity review relationships performance piezo/ferroelectric properties. Herein, we provide comprehensive summary mechanisms correlated physical in field piezocatalysis. A fundamental understanding structural based solid-state physics can be used shed light future development In addition, types materials, strategies for catalysis efficiency enhancement, up-to-date applications environment remediation, renewable conversion, biomedicine biotechnology are discussed. Finally, perspectives designing developing highly active piezocatalysts using guidelines physicochemical proposed.

Language: Английский

Citations

71

An Emerging Family of Piezocatalysts: 2D Piezoelectric Materials DOI
Chengchao Jin, Daiming Liu, Lingxia Zhang

et al.

Small, Journal Year: 2023, Volume and Issue: 19(44)

Published: June 29, 2023

Abstract Piezocatalysis is an emerging technique that holds great promise for the conversion of ubiquitous mechanical energy into electrochemical through piezoelectric effect. However, energies in natural environment (such as wind energy, water flow and noise) are typically tiny, scattered, featured with low frequency power. Therefore, a high response to these tiny critical achieving piezocatalytic performance. In comparison nanoparticles or 1D materials, 2D materials possess characteristics such flexibility, easy deformation, large surface area, rich active sites, showing more future practical applications. this review, state‐of‐the‐art research progresses on their applications piezocatalysis provided. First, detailed description offered. Then comprehensive summary presented examines various fields, including environmental remediation, small‐molecule catalysis, biomedicine. Finally, main challenges prospects discussed. It expected review can fuel application piezocatalysis.

Language: Английский

Citations

70

Biodegradation of sulfametoxydiazine by Alcaligenes aquatillis FA: Performance, degradation pathways, and mechanisms DOI

Yuqian Du,

Qilu Cheng,

Mingrong Qian

et al.

Journal of Hazardous Materials, Journal Year: 2023, Volume and Issue: 452, P. 131186 - 131186

Published: March 11, 2023

Language: Английский

Citations

66

Functional Graphdiyne for Emerging Applications: Recent Advances and Future Challenges DOI Open Access
Mengke Wang,

Junmei Pu,

Yi Hu

et al.

Advanced Functional Materials, Journal Year: 2023, Volume and Issue: 34(4)

Published: Oct. 20, 2023

Abstract Graphdiyne (GDY) is regarded as an exceptional candidate to meet the growing demand in many fields due its rich chemical bonds, highly π‐conjugated structure, uniformly distributed pores, large surface area, and high inhomogeneity of charge distribution. The extensive research efforts bring about a rapid expansion GDY with variety functionalities, which significantly enhance performance including photocatalysis, energy, biomedicine, etc. In this review, synthetic strategies (in situ ex approaches) that are designed rationally functionalize GDY, optimizing their nanostructures by surface/interface engineering dopants or functional groups (heteroatoms/small molecules/macromolecules), building up hierarchical GDY‐based heterostructures highlighted. Theoretical calculations on structural evolution electronic characteristics after functionalization briefly discussed. With elaborate rational structure engineering, applied emerging applications (e.g., hydrogen reaction, CO 2 reduction nitrogen energy storage conversion, nanophotonics, sensors, biomedical applications, etc.) comprehensively Finally, challenges prospects concerning future development nanoarchitectures also presented.

Language: Английский

Citations

62

Dissolved oxygen in aeration-driven piezo-catalytic for antibiotics pollutants removal in water DOI

Minxian Zhang,

Wanqian Guo, Ying-Yin Chen

et al.

Chinese Chemical Letters, Journal Year: 2023, Volume and Issue: 34(9), P. 108229 - 108229

Published: Feb. 17, 2023

Language: Английский

Citations

50

Sustainable self-powered degradation of antibiotics using Fe3O4@MoS2/PVDF modified pipe with superior piezoelectric activity: Mechanism insight, toxicity assessment and energy consumption DOI
Jingxue Wang,

Xiaonan Zhou,

Juncheng Hao

et al.

Applied Catalysis B Environment and Energy, Journal Year: 2023, Volume and Issue: 331, P. 122655 - 122655

Published: April 5, 2023

Language: Английский

Citations

43