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Updated: May 3, 2026

Synthesis of Zeolites Using the ADOR Assembly-Disassembly-Organization-Reassembly Route
Published on: April 3, 2016
A reactive neural network framework for water-loaded acidic zeolites
Andreas Erlebach1, Martin Šípka2,3, Indranil Saha2
1Department of Physical and Macromolecular Chemistry, Faculty of Sciences, Charles University, Hlavova 8, 128 43, Prague 2, Czech Republic. andreas.erlebach@natur.cuni.cz.
Researchers developed a new reactive neural network potential (NNP) for acidic zeolites. This model enables accurate simulations of zeolite catalysts under operating conditions, advancing the study of their properties and chemical behavior.
Area of Science:
- Computational Chemistry
- Materials Science
- Catalysis
Background:
- Water and ion dynamics in zeolite micropores dictate hydrothermal stability, acidity, and catalytic activity.
- Operando studies of acidic zeolites are computationally expensive, limiting research to simplified models and specific cases.
Purpose of the Study:
- To develop a versatile reactive neural network potential (NNP) for acidic zeolites.
- To enable accurate and efficient simulations of zeolite catalysts under realistic operating conditions.
Main Methods:
- Development of a reactive neural network potential (NNP) applicable to the entire class of acidic zeolites.
- The NNP aims to cover a wide range of water concentrations and Si/Al ratios.
- Incorporation of techniques for data-efficient learning and accelerated rare event sampling.
Main Results:
- The NNP achieves (meta)GGA DFT level accuracy, significantly improving computational sampling.
- The potential facilitates the discovery of novel chemical phenomena, such as collective defect formation.
- Demonstration of NNP's extensibility for incorporating higher-level references and enhancing sampling efficiency.
Conclusions:
- The developed NNP represents a significant advancement for simulating realistic catalysts under operando conditions.
- This tool opens new avenues for understanding zeolite behavior and discovering new catalytic chemistry.
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