Gauge-including neural-network quantum Monte Carlo for molecules in magnetic fields
Chengye Lü, Weizhong Fu, Xin-gao Gong, Hongjun Xiang
Abstract
External magnetic fields, through their coupling to orbital and spin motion, complicate the correlated electronic states and impose coordinate-dependent phases on the wavefunction, thereby making accurate electronic structure calculations substantially more demanding. Recently, neural network-based quantum Monte Carlo (NNQMC) has emerged as a highly accurate approach to study nucleus-free systems in magnetic fields. For molecular systems, however, things get more complicated as the magnetic field would introduce a rapidly varying phase in the region far from the gauge origin. Here we introduce a gauge-including phase factor that acts directly on the full many-electron wavefunction and accounts for the prescribed magnetic phase, leaving a smoother correlated residual for the network to learn. This factor greatly improves molecular translation consistency and size consistency, providing a route for studying systems in magnetic fields with NNQMC. Upon this approach, we reproduce weak-field magnetizabilities and strong-field bond contraction in H2. We further apply the method to selected transitions in the CN red and C2 Swan systems at magnetic fields relevant to white dwarfs. The CN transition exhibits a much larger field-induced shift than its C2 counterpart, suggesting its potential as a probe of white-dwarf magnetic fields.
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