Exploiting subspace constraints and ab initio variational methods for quantum chemistry

Abstract

Variational methods offer a highly promising route to exploiting quantum computers for chemistry tasks. Here we employ methods described in a sister paper to the present report, entitled exploring ab initio machine synthesis of quantum circuits, in order to solve problems using adaptively evolving quantum circuits. Consistent with prior authors we find that this approach can outperform human-designed circuits such as the coupled-cluster or hardware-efficient ansätze, and we make comparisons for larger instances up to 14 qubits Moreover we introduce a novel approach to constraining the circuit evolution in the physically relevant subspace, finding that this greatly improves performance and compactness of the circuits. We consider both static and dynamics properties of molecular systems. The emulation environment used is QuESTlink all resources are open source and linked from this paper.

Document Details

Document Type
Pub Defense Publication
Publication Date
Jul 01, 2023
Source ID
10.1088/1367-2630/ace182

Entities

People

  • Cica Gustiani
  • Richard J. Meister
  • Simon C. Benjamin

Organizations

  • Engineering and Physical Sciences Research Council
  • Intelligence Advanced Research Projects Activity

Tags

Fields of Study

  • Computer science

Readers

  • Distributed Systems and Data Platform Development
  • Parallel and Distributed Computing.
  • Quantum Chemistry

Technology Areas

  • Quantum Computing