University Assistant Professor

Dr Raj Pandya will be joining the department as a University Assistant Professor in Physical Chemistry in summer 2026. His research focuses on using light to visualise and control the quantum dynamics of atoms and electrons inside materials. His team develops and applies advanced laser spectroscopy and microscopy experiments (spanning visible–IR, THz, and X-ray wavelength ranges), as well as the associated optical tools, detectors, and theoretical methods needed to interpret them.

Current research directions include following random processes such as ion hopping in battery-relevant materials; using entangled photons and twisted light to access otherwise hidden molecular states in organic semiconductors; and resolving individual femtosecond electronic-transfer steps in non-light-driven reactions (e.g., electro-catalytic cycles).

Work in his group is highly interdisciplinary and collaborative, offering students experience in areas ranging from non-linear optics and signal processing/coding to nanomaterials chemistry.

The group aims to recruit 1–2 PhD students per year. For international applicants, the 2026 deadline has passed; applications from home students may still be considered. PDRA vacancies will be advertised as funding becomes available, and the group is happy to support Fellowship applications. Prospective students or collaborators are encouraged to get in touch if they are interested in the group’s research.

For further details see: https://www.iccd-lab.com/research

Publications

Interrogating the Light-Induced Charging Mechanism in Li-Ion Batteries Using Operando Optical Microscopy.
R Pandya, A Mathieson, BD Boruah, HB de Aguiar, M de Volder
Nano letters
(2023)
23
Hole-limited electrochemical doping in conjugated polymers
ST Keene, JEM Laulainen, R Pandya, M Moser, C Schnedermann, PA Midgley, I McCulloch, A Rao, GG Malliaras
Nature Materials
(2023)
22
Correlating activity and defects in (photo)electrocatalysts using in-situ transient optical microscopy
CA Mesa, M Sachs, E Pastor, N Gauriot, AJ Merryweather, MA Gomez-Gonzalez, K Ignatyev, S Giménez, A Rao, JR Durrant, R Pandya
(2023)
Direct imaging of micrometer-thick interfaces in salt-salt aqueous biphasic systems.
D Degoulange, R Pandya, M Deschamps, DA Skiba, BM Gallant, S Gigan, HB de Aguiar, A Grimaud
Proceedings of the National Academy of Sciences of the United States of America
(2023)
120
Production of Magnetic Arsenic-Phosphorus Alloy Nanoribbons with Small Band Gaps and High Hole Conductivities
F Zhang, E Aw, A Eaton, R Shutt, J Lim, JH Kim, T Macdonald, C De Leon Reyes, A Ashoka, R Pandya, O Payton, L Picco, C Knapp, A Rao, C Howard, A Clancy
(2023)
Competing oxygen evolution reaction mechanisms revealed by high-speed compressive Raman imaging
R Pandya, F Dorchies, D Romanin, S Gigan, A Chin, HB de Aguiar, A Grimaud
(2022)
Room Temperature Optically and Magnetically Active Edges in Phosphorene Nanoribbons
R Pandya, A Ashoka, A Clancy, N Panjwani, N Popiel, A Eaton, T Parton, L Picco, S Feldmann, R Shutt, R Carey, E Aw, T Macdonald, M Severijnen, S Kleuskens, HB de Aguiar, R Friend, J Behrends, P Christianen, C Howard, A Rao
(2022)
Direct Imaging of Micrometer Thick Interfaces in Salt-Salt Aqueous Biphasic Systems
D Degoulange, R Pandya, M Deschamps, D Skiba, B Gallant, S Gigan, H de Aguiar, A Grimaud
(2022)
Competing oxygen evolution reaction mechanisms revealed by high-speed compressive Raman imaging
R Pandya, F Dorchies, D Romanin, S Gigan, AW Chin, HB de Aguiar, A Grimaud
(2022)
A mechanistic study of the dopant-induced breakdown in halide perovskites using solid state energy storage devices
AGM Mathieson, WM Dose, H-G Steinrück, CJ Takacs, S Feldmann, R Pandya, AJ Merryweather, D Mackanic, A Rao, F Deschler, M De Volder
Energy Environ Sci
(2022)
15