Quantifying Hydrogen Chemical Diffusivity in NdNiO3 Thin Films through Operando Multimodal Measurements
Luhan Wei1,2, Haowen Chen2, Zihan Xu2
1Zhejiang University, Hangzhou, Zhejiang 310027, China.
Nano Letters
|April 3, 2025
Summary
Quantifying hydrogen diffusion in nickelate oxides is crucial for advanced applications. This study precisely measures hydrogen chemical diffusivity in NdNiO3, revealing limited proton mobility and challenging prior assumptions.
Area of Science:
- Materials Science
- Solid-State Chemistry
- Oxide Electronics
Background:
- Nickelate oxides possess unique properties for electrocatalysis, neuromorphic computing, and superconductors.
- Proton insertion is key to tuning these properties, but its dynamics are poorly understood.
- Accurate quantification of hydrogen chemical diffusivity in nickelates is a significant knowledge gap.
Purpose of the Study:
- To develop and apply a novel quantitative approach for measuring hydrogen chemical diffusivity in nickelate oxides.
- To precisely determine hydrogen chemical diffusivity in NdNiO3 (NNO), a representative nickelate.
- To address discrepancies and lack of rigorous methods in previous studies.
Main Methods:
- Utilized *operando* multimodal measurements for real-time analysis.
- Employed rigorous kinetic modeling for data interpretation.
- Performed cross-validation across multiple data dimensions for accuracy.
Main Results:
- Successfully quantified hydrogen chemical diffusivity in NdNiO3.
- Revealed inherently limited proton mobility in NNO.
- Challenged the prevailing assumption of rapid proton transport in nickelates.
Conclusions:
- The precise quantification of hydrogen diffusivity provides critical data for optimizing proton-based devices.
- Findings necessitate a re-evaluation of ion dynamics in correlated oxides.
- This work establishes a robust methodology for future studies on ion transport in materials.
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