English

X-ray Driven Trihydrogen Formation on Silica Nanosurfaces

Chemical Physics 2026-08-06 v1 Astrophysics of Galaxies Atomic and Molecular Clusters

Abstract

The trihydrogen cation (H3+\mathrm{H_3^+}) initiates the ion-molecule reactions that build molecular complexity in interstellar space. Whether its canonical formation reaction, H2++H2H3++H\mathrm{H_2^+ + H_2 \rightarrow H_3^+ + H}, proceeds on inorganic surfaces under radiation-driven ionization has remained untested. Here we drive H3+\mathrm{H_3^+} formation on hydrated silica nanoparticles using intense 1.88 keV X-ray pulses, combining ion velocity map imaging, electron time-of-flight spectroscopy, and single-particle coherent diffractive imaging to resolve this chemistry on individual particles. The self-induced surface electric field on the V/nm scale drives interfacial charge transfer and water fragmentation. This field is the dominant parameter governing the relative yields of H+\mathrm{H^+}, H2+\mathrm{H_2^+}, and H3+\mathrm{H_3^+} across particle size, composition, and aggregation. Density functional theory and nonadiabatic quantum molecular dynamics simulations trace this field-driven charge transfer, directly analogous to band bending at semiconductor photoelectrodes. These results establish surface-field-driven charge transfer as a unifying mechanism between radiation dominated astrophysical environments and field-driven surface catalysis.

Cite

@article{arxiv.2608.05590,
  title  = {X-ray Driven Trihydrogen Formation on Silica Nanosurfaces},
  author = {Samuel Sahel-Schackis and Adam Summers and Ritika Dagar and Alexandra Feinberg and Martin Grassl and Simon Dold and Rebecca Boll and Yevheniy Ovcharenko and Chris Aikens and Cesar Costa Vera and Alberto De Fanis and Avijit Duley and Felix Gerke and Daniel Jost and Regina Leiner and Michael Meyer and Ilana J. P. Molesky and Razib Obaid and Jeffrey Powell and Nils Rennhack and Björn Senfftleben and Hendrik Tackenberg and Paul Tuemmler and Sergey Usenko and Christian Peltz and Thomas Fennel and Markus Gallei and Eckart Rühl and Artem Rudenko and Daniel Rolles and Thomas Linker and Matthias F. Kling},
  journal= {arXiv preprint arXiv:2608.05590},
  year   = {2026}
}