A. Bezold
Engineering · The Ohio State University
Publications
46
Citations
457
Est. group size
~1
Recurring co-author estimate
Active years
17
Publishing since 2010
A. Bezold studies high-temperature metal alloys called superalloys, which are used in extreme environments like jet engines, focusing on understanding at the atomic scale why these materials stay strong and resist deformation under heat and stress. Much of the work uses advanced electron microscopy to examine tiny structural defects (such as dislocations and stacking faults) and how alloying elements distribute themselves within the metal's crystal structure. This research supports the design of improved nickel-, cobalt-, and iron-based superalloys for aerospace and energy applications.
Publication output has grown substantially over the last decade, rising from occasional papers before 2020 to a sustained high rate of roughly 6-10 papers per year since 2022.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- Elemental partitioning, defect segregation, and Cu clustering in an Fe-based BCC superalloy
Materials Characterization · 2025
- Atomic origins of dislocation pinning in oxide dispersion strengthened alloys
Journal of Physics Condensed Matter · 2025
- Seismically induced kinking in quartz
2025
- Influence of Fe additions on the property profile of high-strength CoNi-based superalloys
Journal of Applied Physics · 2025
- Elemental Partitioning, Defect Segregation, and Cu Clustering in an Fe-Based BCC Superalloy
SSRN Electronic Journal · 2025
- Seismically induced kinking in quartz
Earth and Planetary Science Letters · 2025
- A new angle on stacking faults: Breaking the edge-on limit in high-resolution defect analysis
arXiv (Cornell University) · 2025
- Advanced Polycrystalline γ′-Strengthened CoNiCr-Based Superalloys
Metallurgical and Materials Transactions A · 2024
- Segregation-induced strength anomalies in complex single-crystalline superalloys
Communications Materials · 2024
- Microscopic mechanism of the L12–D019 phase transformation in a Co-base single crystal superalloy
Acta Materialia · 2024
- Exploring Microstructural Characteristics, Mechanical Behavior, Hydrogen Embrittlement, and Long-Term Stability of Polycrystalline CoNiCr-Based Superalloys
The minerals, metals & materials series · 2024
- Temperature and Time Dependence of Elemental Segregation at Stacking Faults in Ni- and Co-Base Superalloys
The minerals, metals & materials series · 2024
- Seismic induced anisotropy and kinking in quartz
2024
- Unambiguous Stacking Fault Analysis for Unraveling Shearing Mechanisms and Shear-Based Transformations in the L12-Ordered γ′ Phase
The minerals, metals & materials series · 2024
- Uncovering microscopic details of shearing mechanisms in the L1<sub>2</sub> structure by unambiguous stacking fault analysis
BIO Web of Conferences · 2024
- Metallurgical and Materials Transactions A×8
- Acta Materialia×4
- Scripta Materialia×4
- The minerals, metals & materials series×4
- SSRN Electronic Journal×3
- G.B. Viswanathan
Engineering · The Ohio State University
- Ashton J. Egan
Engineering · The Ohio State University
- Michael J. Mills
Engineering · The Ohio State University
- Michael S. Titus
Engineering · Purdue University West Lafayette
- Donald McAllister
Engineering · The Ohio State University
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.
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