AI Article Synopsis

  • Researchers have made advancements in controlling quantum states in two-dimensional materials, specifically focusing on valley degrees of freedom in transition-metal dichalcogenides, where excitons arise from distinct valleys in reciprocal space.
  • This study introduces single-valley exciton doublet (SVXD) states, which are unique exciton states derived from a single valley and allow for direct control of electron spin structures via light.
  • By demonstrating SVXD states in monolayer bismuthene, the research shows how specific light polarization can manipulate these state configurations, potentially leading to new applications in spintronics and quantum information technology.

Article Abstract

Manipulating quantum states through light-matter interactions has been actively pursued in two-dimensional materials research. Significant progress has been made toward the optical control of the valley degrees of freedom in semiconducting monolayer transition-metal dichalcogenides, based on doubly degenerate excitons from their two distinct valleys in reciprocal space. Here, we introduce a type of optically controllable doubly degenerate exciton states that come from a single valley, dubbed as single-valley exciton doublet (SVXD) states. They are unique in that their constituent holes originate from the same valence band, making possible the direct optical control of the spin structure of the excited constituent electrons. Combining ab initio plus Bethe-Salpeter equation (-BSE) calculations and a theoretical analysis method, we demonstrate such SVXD in substrate-supported monolayer bismuthene-which has been successfully grown using molecular beam epitaxy. In each of the two distinct valleys in the Brillouin zone, strong spin-orbit coupling and [Formula: see text] symmetry lead to a pair of degenerate 1s exciton states (the SVXD states) with opposite spin configurations. Any coherent linear combinations of the SVXD in a single valley can be excited by light with a specific polarization, enabling full manipulation of their internal spin configurations. In particular, a controllable net spin magnetization can be generated through light excitation. Our findings open routes to control quantum degrees of freedom, paving the way for applications in spintronics and quantum information science.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10401001PMC
http://dx.doi.org/10.1073/pnas.2307611120DOI Listing

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