Noah P. Holzapfel
Materials Science · The Ohio State University
Publications
42
Citations
531
Est. group size
~1
Recurring co-author estimate
Active years
7
Publishing since 2020
Noah P. Holzapfel's research focuses on metal oxide and chalcogenide materials for energy storage, particularly how ions like lithium and protons move into and through materials such as tungsten oxides and layered sulfide/selenide compounds. This work aims to improve batteries by understanding structural features (like octahedral distortions and ion substitution) that affect charge storage, ion insertion speed, and electrochemical performance. The research combines materials synthesis, crystallography, and electrochemical testing to explain these mechanisms at a fundamental level.
Publication output was minimal before 2020, then became active with a fairly steady output of roughly 5-7 papers per year from 2020-2024, followed by a notable increase in 2025-2026.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- Effects of heteroatom doping on hydrogen uptake in tungsten oxide
Chemical Science · 2026
- Data Availability for "Effects of Heteroatom Doping on Hydrogen Uptake in Tungsten Oxide"
Zenodo (CERN European Organization for Nuclear Research) · 2026
- Data Availability for "Effects of Heteroatom Doping on Hydrogen Uptake in Tungsten Oxide"
Zenodo (CERN European Organization for Nuclear Research) · 2026
- Controlling the superionic transition temperature through anion substitution in CuCr <i>X</i> 2 ( <i>X</i> = S, Se, Te)
Acta Crystallographica Section A Foundations and Advances · 2026
- Niobium Tungsten Oxides as Anodes for High-Power and Low-Temperature Li-Ion Batteries
Chemistry of Materials · 2026
- Evidencing Fast and Reversible Proton Insertion of a Metastable Bilayered Tungsten Oxide
ChemRxiv · 2026
- <i>Operando</i> Unveiling of Hydrogen Spillover Mechanisms on Tungsten Oxide Surfaces
Journal of the American Chemical Society · 2025
- Fundamentals of Proton-Insertion Coupled Electron Transfer (PICET) in Metal Oxides for Aqueous Batteries
ACS Energy Letters · 2025
- Protons undermine lithium-ion batteries with positively disastrous results
Nature Chemistry · 2025
- Controlling the Order–Disorder Transition Temperature through Anion Substitution in CuCr<i>X</i><sub>2</sub> (<i>X</i> = S, Se, Te)
Chemistry of Materials · 2025
- Influence of octahedral ligand field distortions and temperature on the electrochromic response of tungsten oxides
Physical Review Materials · 2025
- Interlayer pillaring influences the octahedral tilting and electrochemical capacity of tungsten oxides
Journal of Materials Chemistry A · 2025
- Ion-dependent electrochemical behavior in shear-structured tungsten oxides
Solid State Ionics · 2025
- Role of Temperature on Electrochemical Li<sup>+</sup> Insertion into Wadsley-Roth Niobium Tungsten Oxides
ECS Meeting Abstracts · 2025
- Electrochemical Lithium Insertion and Migration Energetics in Wadsley-Roth Molybdenum-Based Oxides
ECS Meeting Abstracts · 2025
- Chemistry of Materials×7
- The Cambridge Structural Database×6
- ECS Meeting Abstracts×4
- Acta Crystallographica Section A Foundations and Advances×4
- Zenodo (CERN European Organization for Nuclear Research)×3
- Justin L. Andrews
Materials Science · Purdue University West Lafayette
- Qi Wang
Materials Science · Purdue University West Lafayette
- Mark Lust
Materials Science · The Ohio State University
- Junior Bennett
Materials Science · Purdue University West Lafayette
- Sayan Basak
Materials Science · Purdue University West Lafayette
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 19, 2026.
Claim or correct this profile