B Santhosh kumar, Paavai Era, S. Deepapriya, Tholkappiyan Ramachandran, John D. Rodney, Byung Chul Kim, V. Siva, RO. MU. Jauhar
Designing efficient and robust electrocatalysts is essential for sustainable hydrogen production via water electrolysis. In this work, a reaction time-controlled, morphology-tailored Ni-BTC MOF, synthesized over 12 hours, is developed as an effective electrocatalyst for the HER. Powder X-ray diffraction confirms the formation of the crystalline framework with preserved coordination between Ni 2+ centers and trimesic acid linkers, along with reduced crystallite size. The Ni–BTC MOF exhibits a mesoporous architecture with a high surface area of 204.77 m 2 g -1 , facilitating enhanced electrolyte accessibility and mass transport. Morphological and compositional analyses using FESEM, TEM, and EDS further confirm the formation of a uniform porous structure. Electrochemical studies reveal that the optimized 9:0.5:0.5 electrode exhibits a low overpotential of 170 mV at 10 mA cm -2 and a Tafel slope of 120 mV dec -1 , along with excellent durability over prolonged operation. The enhanced double-layer capacitance (3.12 × 10 -3 F) and electrochemically active surface area (78.1 cm 2 ) indicate a higher density of accessible active sites compared to the 8:1:1 electrode. These results demonstrate that reaction time-controlled morphological tuning and optimized electrode composition significantly enhance HER performance, highlighting Ni-BTC MOF as promising candidates for efficient and sustainable hydrogen generation. • Reaction time-controlled synthesis of morphology-tuned Ni-BTC MOF. • High surface area (204.77 m² g⁻¹) enhances HER activity • Ni–BTC (12 h) electrode exhibits a low overpotential of 170 mV at 10 mA cm⁻². • Tafel slope of 120 mV dec⁻¹ indicates favourable HER kinetics. • Excellent stability over 3600 min in a two-electrode system.