Area of research
Renewable Energy, Sustainability and the Environment · Mechanical Engineering
Research interest
Research interests include Electrochemistry, Materials science, Chemistry, Faraday efficiency, Environmental science, and Process engineering.
Best practices for in-situ and operando techniques within electrocatalytic systems
Migration-assisted, moisture gradient process for ultrafast, continuous CO<sub>2</sub> capture from dilute sources at ambient conditions
Fully-integrated electrochemical system that captures CO<sub>2</sub>from flue gas to produce value-added chemicals at ambient conditions
CO2-free high-purity ethylene from electroreduction of CO2 with 4% solar-to-ethylene and 10% solar-to-carbon efficiencies
Chloride-Promoted High-Rate Ambient Electrooxidation of Methane to Methanol on Patterned Cu–Ti Bimetallic Oxides
Patterned microfluidic devices for rapid screening of metal–organic frameworks yield insights into polymorphism and non-monotonic growth
Sustainable Routes for Photo-Electrochemical Synthesis of Ammonia Using Various Nitrogen Precursors
Machine Learning-Driven, Sensor-Integrated Microfluidic Device for Monitoring and Control of Supersaturation for Automated Screening of Crystalline Materials
Preventing Over-Electrodialysis for Efficient CO<sub>2</sub> Capture from Seawater
2D High‐Entropy Transition Metal Dichalcogenides for Carbon Dioxide Electrocatalysis
Solar-driven electrochemical synthesis of ammonia using nitrate with 11% solar-to-fuel efficiency at ambient conditions
Fundamental insight into electrochemical oxidation of methane towards methanol on transition metal oxides
Competing Effects of pH, Cation Identity, H<sub>2</sub>O Saturation, and N<sub>2</sub> Concentration on the Activity and Selectivity of Electrochemical Reduction of N<sub>2</sub> to NH<sub>3</sub> on Electrodeposited Cu at Ambient Conditions
Organophilicity of Graphene Oxide for Enhanced Wettability of ZnO Nanorods
Assessment of Artificial Photosynthetic Systems for Integrated Carbon Capture and Conversion