
Aaron Lindenberg
Stanford University · Materials Science and Engineering
Active 1997–2026
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About
Aaron Lindenberg is a Professor of Materials Science and Engineering and of Photon Science at Stanford University. His professional biography as presented on the Stanford Materials Science and Engineering faculty page identifies him as a faculty member contributing to the interdisciplinary fields of materials science and photon science. The page lists him among other distinguished professors but does not provide further details about his specific research focus, background, or key contributions. Therefore, no additional biographical or research information is available from the provided text.
Research topics
- Chemistry
- Metallurgy
- Organic chemistry
- Quantum mechanics
- Chemical engineering
- Optics
- Materials science
- Physics
- Engineering
- Condensed matter physics
Selected publications
Steam-created grain boundaries for methane C–H activation in palladium catalysts
Science · 2021 · 225 citations
) catalysts. Theoretical calculations show that strain introduced by the defective structure can enhance C–H bond activation. Introduction of grain boundaries through laser ablation led to further rate increases.
Subterahertz collective dynamics of polar vortices.
Nature · 2021 · 136 citations
The collective dynamics of topological structures1-6 are of interest from both fundamental and applied perspectives. For example, studies of dynamical properties of magnetic vortices and skyrmions3,4 have not only deepened our understanding of many-body physics but also offered potential applications in data processing and storage7. Topological structures constructed from electrical polarization, rather than electron spin, have recently been realized in ferroelectric superlattices5,6, and these…
Colossal Strain Tuning of Ferroelectric Transitions in KNbO<sub>3</sub> Thin Films
Advanced Materials · 2024-11-12 · 9 citations
articleOpen accessAbstract Strong coupling between polarization ( P ) and strain (ɛ) in ferroelectric complex oxides offers unique opportunities to dramatically tune their properties. Here colossal strain tuning of ferroelectricity in epitaxial KNbO 3 thin films grown by sub‐oxide molecular beam epitaxy is demonstrated. While bulk KNbO 3 exhibits three ferroelectric transitions and a Curie temperature ( T c ) of ≈676 K, phase‐field modeling predicts that a biaxial strain of as little as −0.6% pushes its T c >…
3D Heisenberg universality in the van der Waals antiferromagnet NiPS3
npj Quantum Materials · 2024-11-27 · 6 citations
articleOpen accessAbstract Van der Waals (vdW) magnetic materials are comprised of layers of atomically thin sheets, making them ideal platforms for studying magnetism at the two-dimensional (2D) limit. These materials are at the center of a host of novel types of experiments, however, there are notably few pathways to directly probe their magnetic structure. We confirm the magnetic order within a single crystal of NiPS 3 and show it can be accessed with resonant elastic X-ray diffraction along the edge of the vd…
Cell Reports Physical Science · 2025-06-01 · 5 citations
articleOpen accessSenior authorPhase segregation dynamics in mixed-halide perovskites revealed by plunge-freeze
Recent grants
Single nanocrystal phase transition dynamics
NSF · $400k · 2013–2016
Frequent coauthors
- 87 shared
David A. Reis
Stanford University
- 63 shared
M. Kozina
- 62 shared
Haidan Wen
Argonne National Laboratory
- 62 shared
Burak Güzeltürk
- 60 shared
Xijie Wang
Zhejiang University
- 59 shared
Lane W. Martin
Lawrence Berkeley National Laboratory
- 58 shared
Tony F. Heinz
- 57 shared
Matthias C. Hoffmann
Linac Coherent Light Source
Education
- 2005
Ph.D., Materials Science and Engineering
Stanford University
- 2000
B.S., Materials Science and Engineering
University of California, Berkeley
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