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Reshma R. Rao

Massachusetts Institute of Technology · US
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Area of research
Renewable Energy, Sustainability and the Environment · Electrochemistry
Research interest
Research interests include Chemistry, Oxygen evolution, Catalysis, Oxygen, Electrocatalyst, and Materials science.
h-index
citations
7,960
works
24
NIH funding
primary concept
email

Recent publications

Confined Water for Catalysis: Thermodynamic Properties and Reaction Kinetics
Chemical Reviews 2025cited by 57position: middledoi
Facet-Dependent Oxygen Evolution Reaction Activity of IrO<sub>2</sub> from Quantum Mechanics and Experiments
Journal of the American Chemical Society 2024cited by 65position: middledoi
Human- and machine-centred designs of molecules and materials for sustainability and decarbonization
Nature Reviews Materials 2022cited by 129position: middledoi
The low overpotential regime of acidic water oxidation part II: trends in metal and oxygen stability numbers
Energy & Environmental Science 2022cited by 82position: middledoi
The low overpotential regime of acidic water oxidation part I: the importance of O<sub>2</sub> detection
Energy & Environmental Science 2022cited by 53position: middledoi
Enhancing oxygen reduction electrocatalysis by tuning interfacial hydrogen bonds
Nature Catalysis 2021cited by 352position: middledoi
Cation- and pH-Dependent Hydrogen Evolution and Oxidation Reaction Kinetics
JACS Au 2021cited by 335position: middledoi
Regulating oxygen activity of perovskites to promote NOx oxidation and reduction kinetics
Nature Catalysis 2021cited by 154position: middledoi
pH- and Cation-Dependent Water Oxidation on Rutile RuO<sub>2</sub>(110)
The Journal of Physical Chemistry C 2021cited by 144position: firstdoi
Cation-Dependent Interfacial Structures and Kinetics for Outer-Sphere Electron-Transfer Reactions
The Journal of Physical Chemistry C 2021cited by 92position: middledoi
Self-supported ultra-active NiO-based electrocatalysts for the oxygen evolution reaction by solution combustion
Journal of Materials Chemistry A 2021cited by 34position: middledoi
Operando identification of site-dependent water oxidation activity on ruthenium dioxide single-crystal surfaces
Nature Catalysis 2020cited by 339position: firstdoi
Recommended Practices and Benchmark Activity for Hydrogen and Oxygen Electrocatalysis in Water Splitting and Fuel Cells
Advanced Materials 2019cited by 1,315position: middledoi
Tuning perovskite oxides by strain: Electronic structure, properties, and functions in (electro)catalysis and ferroelectricity
Materials Today 2019cited by 277position: middledoi
Anomalous Antiferromagnetism in Metallic <mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" display="inline"><mml:mrow><mml:msub><mml:mrow><mml:mi>RuO</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math> Determined by Resonant X-ray Scattering
Physical Review Letters 2019cited by 184position: middledoi
An <i>In Situ</i> Surface-Enhanced Infrared Absorption Spectroscopy Study of Electrochemical CO<sub>2</sub> Reduction: Selectivity Dependence on Surface C-Bound and O-Bound Reaction Intermediates
The Journal of Physical Chemistry C 2018cited by 299position: middledoi
Trends in Activity and Dissolution on RuO<sub>2</sub> under Oxygen Evolution Conditions: Particles versus Well-Defined Extended Surfaces
ACS Energy Letters 2018cited by 266position: middledoi
Surface Orientation Dependent Water Dissociation on Rutile Ruthenium Dioxide
The Journal of Physical Chemistry C 2018cited by 69position: firstdoi
Perovskites in catalysis and electrocatalysis
Science 2017cited by 1,768position: middledoi
Towards identifying the active sites on RuO<sub>2</sub>(110) in catalyzing oxygen evolution
Energy & Environmental Science 2017cited by 438position: firstdoi
Tuning Redox Transitions via Inductive Effect in Metal Oxides and Complexes, and Implications in Oxygen Electrocatalysis
Joule 2017cited by 438position: middledoi
Orientation-Dependent Oxygen Evolution on RuO<sub>2</sub> without Lattice Exchange
ACS Energy Letters 2017cited by 375position: middledoi
The Role of Ru Redox in pH-Dependent Oxygen Evolution on Rutile Ruthenium Dioxide Surfaces
Chem 2017cited by 214position: middledoi
pH dependence of OER activity of oxides: Current and future perspectives
Catalysis Today 2015cited by 481position: middledoi

Grants

No grants ingested yet.

Frequent collaborators

Yang Shao‐Horn · National University of Singapore22 papers (2015–2025)Livia Giordano · Massachusetts Institute of Technology10 papers (2015–2022)Jonathan Hwang · Massachusetts Institute of Technology9 papers (2017–2021)Kelsey A. Stoerzinger · National University of Singapore8 papers (2015–2024)Ifan E. L. Stephens · The Faraday Institution6 papers (2017–2020)Botao Huang · Massachusetts Institute of Technology6 papers (2019–2025)Yu Katayama · Massachusetts Institute of Technology6 papers (2017–2021)Hoydoo You · Argonne National Laboratory5 papers (2017–2021)Yirui Zhang · Massachusetts Institute of Technology5 papers (2021–2025)Ib Chorkendorff · Institute of Catalysis and Petrochemistry5 papers (2017–2022)Manuel J. Kolb · Massachusetts Institute of Technology4 papers (2017–2020)Xiao Renshaw Wang · Nanyang Technological University4 papers (2017–2021)Jiayu Peng · Massachusetts Institute of Technology4 papers (2019–2025)Sokseiha Muy · Massachusetts Institute of Technology4 papers (2019–2022)Jeffrey C. Grossman · Massachusetts Institute of Technology4 papers (2021–2025)Hua Zhou · Argonne National Laboratory4 papers (2017–2021)Apurva Mehta · Material Sciences (United States)3 papers (2017–2020) · 3 papers (2017–2020)Jan Rossmeisl · University of Copenhagen3 papers (2017–2018)Zhenxing Feng · Massachusetts Institute of Technology3 papers (2017–2019)
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