Accelerated discovery of superoxide-dismutase nanozymes via high-throughput computational screening
Ускоренное открытие наноферментов с активностью супероксиддисмутазы с помощью высокопроизводительного вычислительного скрининга
2021-11-25
SCID: 54.1/wy59uur4
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adsorption energy principledensity functional theoryenergy level principlemetal-organic frameworkssuperoxide-dismutase nanozymes
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Abstract (AI)
The activity of nanomaterials (NMs) in catalytically scavenging superoxide anions mimics that of superoxide dismutase (SOD). Although dozens of NMs have been demonstrated to possess such activity, the underlying principles are unclear, hindering the discovery of NMs as the novel SOD mimics. In this work, we use density functional theory calculations to study the thermodynamics and kinetics of the catalytic processes, and we develop two principles, namely, an energy level principle and an adsorption energy principle, for the activity. The first principle quantitatively describes the role of the intermediate frontier molecular orbital in transferring electrons for catalysis. The second one quantitatively describes the competition between the desired catalytic reaction and undesired side reactions. The ability of the principles to predict the SOD-like activities of metal-organic frameworks were verified by experiments. Both principles can be easily implemented in computer programs to computationally screen NMs with the intrinsic SOD-like activity.
Key Findings
1
An adsorption energy principle was developed that quantitatively describes competition between desired catalytic reaction and undesired side reactions.
2
An energy level principle was developed that quantitatively describes the role of intermediate frontier molecular orbitals in electron transfer for SOD-like catalysis.
3
Both principles predict SOD-like activities of metal-organic frameworks and were experimentally validated.
4
Density functional theory (DFT) calculations were used to study thermodynamics and kinetics of nanomaterial catalytic processes for superoxide scavenging.
5
The two principles can be implemented in computational screening workflows to accelerate discovery of nanomaterials with intrinsic SOD-like activity.
Research Object
Nanomaterials (NMs) possessing intrinsic superoxide-dismutase (SOD)-like catalytic activity
Research Subject
Thermodynamics and kinetics of the SOD-like catalytic processes and predictive principles (energy level and adsorption energy principles) for screening intrinsic SOD-like activity in nanomaterials
Publication Details
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2021-11-25
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