AI-guided electro-decomposition of persistent organic pollutants: a long-awaited vision becoming reality?
Literature Information
Lin Zhu, Lei Du, Guodong Cao
Existing and emerging persistent organic pollutants (POPs) constitute great threats to human health and cause great economic loss. The persistence of these chemicals made it necessary to develop proper mitigation strategies to remove or degrade them from the natural environment. Various methods for electrocatalytic degradation of POPs have been developed under lab conditions, while challenges including harmful byproducts, limited working time, etc. still limit their practical use. As the core of electrocatalytic degradation is the optimization of electrocatalysts, we outlined why high-entropy alloys could be ideal materials as catalysts in this perspective work, and further discussed how AI could be utilized in facilitating and accelerating the design–characterize–test cycle for electrocatalyst development. The potential challenges, negative effects and solutions of applying AI in this process were also discussed. By leveraging AI's power, it is expected that the vast potential of new catalyst materials including high-entropy alloys could be fully explored in a timely manner, which would contribute to developing a practical electro-degradation strategy for POP mitigation. A broad perspective of AI in designing high-entropy alloy catalysts was also included.
Recommended Journals
Related Literature
The influence of charge on the structure and dynamics of water encapsulated in reverse micelles
Animesh Patra, Trung Quan Luong, Rajib Kumar Mitra, Martina Havenith
DOI: 10.1039/C4CP00386A
Diastereomeric preference of a triply axial chiral binaphthyl based molecule: a concentration dependent study by chiroptical spectroscopies
Zahra Dezhahang, Mohammad Reza Poopari, Florencio Eloy Hernández, Carlos Diaz, Yunjie Xu
DOI: 10.1039/C4CP01704H
Conformational propensities and dynamics of a βγ-crystallin, an intrinsically disordered protein
Venkatraman Ramanujam, Atul K. Srivastava
DOI: 10.1039/C3CP53558D
Dynamic pattern formation of liquid crystals using binary self-assembled monolayers on an ITO surface under DC voltage
Takao Ishida, Makiko Oyama, Kei-ichi Terada, Masa-aki Haga
DOI: 10.1039/C4CP03622K
The invertible electrochemical properties and thermal response of a series of gel-type ionic liquids based on polyoxometalates
Xuefei Wu, Yunyan Li, Qingyin Wu, Hong Ding, Wenfu Yan
DOI: 10.1039/C4CP03673E
Oxygen-evolving complex of photosystem II: correlating structure with spectroscopy
Ravi Pokhrel, Gary W. Brudvig
DOI: 10.1039/C4CP00493K
Creation of mesopores in carbon nanotubes with improved capacities for lithium ion batteries
Jiang Gong, Ryszard J. Kalenczuk, Ewa Mijiowska, Wenbin Liu, Tao Tang
DOI: 10.1039/C4CP04386C
Correction: A reduced radial potential energy function for the halogen bond and the hydrogen bond in complexes B⋯XY and B⋯HX, where X and Y are halogen atoms
DOI: 10.1039/C4CP90149E
A computational study of carbon dioxide adsorption on solid boron
Qiao Sun, Zhen Li, Aijun Du
DOI: 10.1039/C4CP00044G
You might also like
What is Ethyl 3-cyclohexylpropanoate (CAS: 10094-36-7)?
Ethyl 3-cyclohexylpropanoate is a clear, colorless to light yellow liquid with a...
How should waste containing 2-(Hydroxymethyl)-5-(methoxycarbonyl)-6-methyl-4-(2-nitrophenyl)nicotinic acid (CAS: 34783-31-8) be handled?
Waste containing 2-(Hydroxymethyl)-5-(methoxycarbonyl)-6-methyl-4-(2-nitrophenyl...
How should waste containing 2,4,6-Tris(pentafluoroethyl)-1,3,5-triazine (CAS: 858-46-8) be handled?
Waste containing 2,4,6-Tris(pentafluoroethyl)-1,3,5-triazine (CAS: 858-46-8) sho...
What precautions should be taken when handling Chloroac-nle-oh (CAS: 56787-36-1)?
When handling Chloroac-nle-oh (CAS: 56787-36-1), it is essential to wear appropr...
What industries use Ethyl 6-phenylimidazo[2,1-b][1,3]thiazole-3-carboxylate (CAS: 752244-05-6)?
Ethyl 6-phenylimidazo[2,1-b][1,3]thiazole-3-carboxylate is primarily used in the...
Are there alternatives to alpha-(2-Bromophenyl)benzylamine (CAS: 55095-15-3) in synthesis?
Alternatives to alpha-(2-Bromophenyl)benzylamine (CAS: 55095-15-3) in synthesis ...
How should waste containing 2-Chloro-5-methoxypyridine (CAS: 139585-48-1) be handled?
Waste containing 2-Chloro-5-methoxypyridine (CAS: 139585-48-1) should be managed...
What industries use 1-(4-Methoxyphenyl)-2,5-dimethyl-1H-pyrrole (CAS: 5044-27-9)?
1-(4-Methoxyphenyl)-2,5-dimethyl-1H-pyrrole (CAS: 5044-27-9) is used in various ...
Are there alternatives to 3-Bromo-5-(N-Boc)aminomethylisoxazole (CAS: 903131-45-3) in synthesis?
There are alternative reagents and compounds that can be used in the synthesis o...
What is Tungsten(IV) oxide (CAS: 12036-22-5)?
Tungsten(IV) oxide, also known as tungsten dioxide, is a chemical compound with ...











![2-{3-[4-(3-Chlorophenyl)-1-piperazinyl]propyl}[1,2,4]triazolo[4,3-a]pyridin-3(2H)-one hydrochloride (1:1) structure 2-{3-[4-(3-Chlorophenyl)-1-piperazinyl]propyl}[1,2,4]triazolo[4,3-a]pyridin-3(2H)-one hydrochloride (1:1) structure](https://static.chemtradehub.com/structs/253/25332-39-2-496e.webp)


![[2',6'-bis(propan-2-yloxy)-[1,1'-biphenyl]-3-yl]dicyclohexylphosphane structure [2',6'-bis(propan-2-yloxy)-[1,1'-biphenyl]-3-yl]dicyclohexylphosphane structure](https://static.chemtradehub.com/structs/787/787618-22-8-dda2.webp)
