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Dihydrogen interaction (H?···H?) between NH3 and BH4? with respect to stability and reactivity: potentia


Thesis topic details

General information

Organisation

The French Alternative Energies and Atomic Energy Commission (CEA) is a key player in research, development and innovation in four main areas :
• defence and security,
• nuclear energy (fission and fusion),
• technological research for industry,
• fundamental research in the physical sciences and life sciences.

Drawing on its widely acknowledged expertise, and thanks to its 16000 technicians, engineers, researchers and staff, the CEA actively participates in collaborative projects with a large number of academic and industrial partners.

The CEA is established in ten centers spread throughout France
  

Reference

SL-DES-26-0641  

Thesis topic details

Category

Technological challenges

Thesis topics

Dihydrogen interaction (H?···H?) between NH3 and BH4? with respect to stability and reactivity: potential synergy between NaBH4 and NH3 for improved H2 density and enhanced safety

Contract

Thèse

Job description

The thesis focuses on the study of the hybrid ammonia–sodium borohydride system (NH3–NaBH4) as an innovative chemical energy carrier. The objective is to investigate the combination of ammonia (NH3), recognised for its high hydrogen density and mature industrial infrastructure, with sodium borohydride (NaBH4), a high-capacity chemical hydrogen storage material, in order to overcome certain limitations associated with each vector when considered separately.

The proposed work specifically addresses the safer storage and transport of ammonia through its coupling with sodium borohydride, enabling a reduction in vapour pressure (compared to 8.88 bar at 21 °C for liquid ammonia) and less restrictive operating conditions. In parallel, the thesis aims to improve the stability (relative to the H2O–NaBH4 system) and operability of sodium borohydride which, when combined with ammonia molecules (acting as inert species), forms stable liquid or viscous phases that are potentially pumpable, thereby facilitating integration into energy-related processes.

The fundamental goal of the thesis is to understand the physicochemical mechanisms governing this hybrid system, particularly the role of dihydrogen interactions between the N–H bonds of ammonia and the B–H bonds of borohydride, and their influence on stability, reactivity, transport properties, and hydrogen release pathways (thermal and/or hydrolytic).

Beyond its storage function, the thesis also explores the potential of the NH3–NaBH4 system as a novel hybrid material with high gravimetric and volumetric hydrogen capacity, while considering realistic operational constraints relevant to energy applications in a dual-use context. At this stage, exhaustive optimisation is not the primary objective.

University / doctoral school

Sciences Chimiques Balard (EDSCB)
Montpellier

Thesis topic location

Site

Grenoble

Requester

Position start date

01/10/2026

Person to be contacted by the applicant

DELMAS Jérome jerome.delmas@cea.fr
CEA
DES/DTNM//LVME
CEA Grenoble - LITEN/DTNM/LCSN
17 avenue des Martyrs
38054 GRENOBLE Cedex 9

0438782372

Tutor / Responsible thesis director

DEMIRCI Umit umit.demirci@umontpellier.fr
Université de Montpellier
ED459 Sciences Chimiques Balard – Université de Montpellier

+33 4 67 14 91 60

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