Ke Tian, Qingju Wang, Kevin Siniard, Liqi Qiu, Murillo Longo Martins, Yongqiang Cheng, Xiang Lyu, Alexey Serov, Arvind Ganesan, Babafemi Adigun, Zhenzhen Yang, Tao Wang, Sheng Dai
The scarcity of protons in alkaline media limits many proton-coupled energy conversion processes, particularly the hydrogen evolution reaction (HER). Here, we introduce a strategy to create a confined acidic microenvironment within strongly alkaline solution. Ultramicroporous Brønsted acidic zeolites stabilize hydrated protons through a size-exclusion effect, in the presence of bulky quaternary ammonium bases. In situ diffuse reflectance infrared Fourier transform spectroscopy and first-principles simulations reveal that confined protons derived from Brønsted acid sites migrate into the hydrogen-bond network of water, forming a Zundel-Eigen continuum that supports Grotthuss transport. Complementary inelastic neutron scattering and solid-state nuclear magnetic resonance confirm the persistence of hydrated protons under highly alkaline conditions. Guided by this principle, we developed a composite catalyst combining proton-donating nanoparticles with active, conductive layers, which delivers a 19-25% reduction in overpotential, a 20-fold enhancement in Pt mass activity, and accelerated kinetics compared with commercial Pt/C. These findings establish a broadly applicable framework for decoupling local proton activity from bulk pH, opening new pathways for HER and other proton-coupled reactions in alkaline environments.