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ACS Catalysis· 2026Q1

Sampling-Expansion Approach Enabling Efficient and Accurate Steady-State Solutions for Descriptor-Based Microkinetic Modeling

Y.H. Liu, Tao Wang

Short summary

A new Sampling-Expansion Approach (SEA) significantly accelerates descriptor-based microkinetic modeling (MKM) by optimizing solving strategies and leveraging converged solutions, reducing computational cost and improving robustness.

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Key points

  • Introduces the Sampling-Expansion Approach (SEA) for accelerated descriptor-based microkinetic modeling (MKM).
  • SEA improves efficiency by optimizing solving strategies and using converged solutions as initial guesses.
  • The method is integrated into the MuKiP computational platform.
  • SEA demonstrates significantly higher efficiency and robustness than conventional approaches.

AI-generated from the title and abstract; the full text is not read.

Abstract

Abstract Microkinetic modeling (MKM) is a pivotal computational tool that bridges potential energy surfaces and catalytic activity, while descriptor-based MKM enables rational catalyst design through computational methods. However, the use of descriptors requires repeated MKM calculations across numerous conditions, increasing the overall cost by orders of magnitude and imposing stringent demands on solver stability. To address these challenges, we herein report a robust and efficient Sampling-Expansion Approach (SEA) for accelerated descriptor-based MKM, which is incorporated into our in-house developed multiscale kinetic modeling platform (MuKiP). SEA maximizes computational efficiency by strategically controlling the solving strategy, leveraging converged solutions as initial guesses, and employing a parallel computing framework. Compared with conventional approaches, SEA achieves significantly higher efficiency and reduces reliance on solver stability, thereby exhibiting strong robustness. The application of the proposed method and framework is expected to substantially accelerate the rational design of catalysts.

The authors' abstract, as published at the source. ACS Catalysis, 2026 · DOI ↗

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Field: Renewable Energy, Sustainability and the Environment

Renewable Energy, Sustainability and the EnvironmentEnergy