Qian Kou, Chuntao Ge, Yan Yan, Weiliang Jin, Saijun Xiao, Xuemin Liang, Wenjuan Qi, Hongmin Zhu, Zhili Liang, Jun Zhang, Mingkai Liu, Geir Martin Haarberg
Developing wettable titanium diboride (TiB 2 ) cathodes enables energy-conservation aluminum electrolysis technology with significant carbon dioxide (CO 2 ) emissions reduction for the sustainability of aluminum industry. However, synthesizing suitable TiB 2 cathodes remains challenging. Herein, we propose a promising strategy for in situ synthesis of TiB 2 -coated cathodes via the oriented assembly of TiB 2 nanocrystals (NCs) in high-temperature molten salts. Colloidal TiB 2 NCs with an average size of 4.1 nm were synthesized in a molten cryolite-based bath at 1243 K. Under an electric field, they migrated to the cathode surface through oriented attachment crystallization, assembling directly into TiB 2 coatings with a thickness of up to hundreds of micrometers. These coatings exhibited fully dense structures with exceptionally low oxygen content (≤90 ppm). The in situ assembled TiB 2 -coated cathodes demonstrated an extremely low wear rate of 0.09 mm yr –1 during aluminum electrolysis. This technique potentially enables significant reductions in electricity consumption and corresponding CO 2 -equivalent emissions. Implementation of these TiB 2 cathodes for retrofitting existing electrolytic cells, or combining them with inert anodes for carbon-free aluminum electrolysis, represents a viable pathway. Our work resolves the fundamental conflict between aluminum’s essential role in the energy transition and the aluminum electrolysis industry’s high energy consumption and emissions. It demonstrates the groundbreaking application of oriented assembly technology within high-temperature molten salt systems, addressing critical materials preparation challenges in traditional metallurgical processes.