Doctoral defence: Rohit Kumar “ZIF-8-derived M-N-C electrocatalysts for oxygen reduction reaction in AEMFC and MFC devices”

Rohit Kumari doktoritöö kaitsmine
  • 03 Sep 2026
  • 14:15–15:30
  • Ravila 14a-1020, and online
  • The Institute of Chemistry
Doctoral defence Sari

On 3 September at 14.15 Rohit Kumar will defend his doctoral thesis “ZIF-8-derived M-N-C electrocatalysts for oxygen reduction reaction in AEMFC and MFC devices”.

Supervisors:
Prof. Kaido Tammeveski, Institute of Chemistry, University of Tartu
Dr. Marek Mooste, Institute of Chemistry, University of Tartu
Dr. Ivar Zekker, Institute of Chemistry, University of Tartu

Opponent:
Prof. Barbara Mecheri, Department of Chemical Science and Technologies, University of Rome Tor Vergata, Italy

Summary:
The growing global energy demand is increasingly displacing fossil fuels from energy chains. To ensure long-term energy security and deep decarbonization, the world urgently needs highly efficient energy devices, such as hydrogen fuel cells (HFCs), which utilise hydrogen as a fuel and oxygen as an oxidant. However, the sluggish oxygen reduction reaction (ORR) kinetics hinder the commercialisation of HFCs, especially anion-exchange membrane fuel cells (AEMFCs). Despite several innovations in fuel cell design, their widespread adoption still lags desired momentum. Therefore, the aim of the doctoral thesis was to design metal-organic framework-derived carbon-based catalysts capable of substituting for expensive platinum-based catalysts. A comprehensive set of physicochemical and electrochemical techniques was used to examine the structural integrity, pore architecture and ORR performance in a half-cell setup. When these designed transition-metal-doped carbon materials were integrated as cathode catalysts, they significantly enhanced the performance of AEMFCs and microbial fuel cells (MFCs). With the top-performing catalyst material, the AEMFC achieved an outstanding power density of >1 W cm⁻², demonstrating that a high-performance AEMFC device operating with a Pt-free cathode catalyst is entirely achievable. Therefore, this thesis presents a promising pathway to bypass platinum shortages, providing affordable electrochemical energy technology that could meet the energy demands of everyday life.

Past events in series

03. September

Doctoral defence: Silver Juvanen “Non-precious metal catalysts based on biomass-derived carbon for electrocatalytic applications”
Doctoral defence 03 Sep 2026, 10:15–11:30
Ravila 14a-1020, and online The Institute of Chemistry

02. September

Doctoral defence: Mahtab Salari Mehr “Microstructure optimization of atomic layer deposited chromium-containing ternary compound thin films”
Doctoral defence 02 Sep 2026, 14:15–18:00
Nooruse 1-121 (TÜTI) Institute of Physics, Zoom English

28. August

Doctoral defence: John Paulo Aquino Samin “Unified pH in aqueous-organic solvent mixtures and low-polarity solvents”
Doctoral defence 28 Aug 2026, 14:15–15:30
Ravila 14a-1020, and online The Institute of Chemistry
Doctoral defence: Raegan Danielle Chambers “Electrocatalysis of oxygen reduction on Pt nanoparticles deposited on novel support materials”
Doctoral defence 28 Aug 2026, 10:15–11:30
Ravila 14a–1020, and online The Institute of Chemistry

24. August

Doctoral defence: Lucy Zheng “Cartan Khronon – Real space-time structure”
Doctoral defence 24 Aug 2026, 14:15–18:00
B103 Institute of Physics
  • 03 Sep 2026
  • 14:15–15:30
  • Ravila 14a-1020, and online
  • The Institute of Chemistry
Doctoral defence Sari