Anomalous stabilization of excitons by metallic proximity

Abstract Metallic environments are generally expected to suppress excitons through strong dielectric screening, yet their influence can differ in composite systems where metallic and insulating regions coexist. Here, we investigate excitonic states in Pd x Cu 1-x CrO 2 thin films across a percolation-driven metal-insulator transition. Optical spectroscopy and many-body GW calculations show that CuCrO 2 hosts strongly bound excitons with a binding energy of about 489 meV. With increasing Pd substitution, the system approaches an insulator-to-metal transition near x = 0.5, consistent with the site-percolation threshold of a triangular lattice. In the pre-percolation regime, the excitonic resonance redshifts by 241 meV while the Tanguy continuum onset remains nearly unchanged, consistent with a substantial increase in exciton binding energy before metallization. An image-charge-based excitonic hydrogen model shows that isolated metallic regions can enhance electron-hole binding through image-charge interactions, whereas conventional screening is recovered once a continuous metallic network forms. Although this model provides a possible interpretation of the observed excitonic evolution, an alternative scenario in which metallic and excitonic responses originate from electronically distinct states and evolve independently cannot be excluded. These results reveal unusual metallic-excitonic coexistence near a percolation-driven metal-insulator transition and suggest nanoscale metallic proximity as a possible route for modifying excitonic interactions.

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Publication Details

Journal
Communications Materials
Published
2026-09-16
DOI
https://doi.org/10.1038/s43246-026-01349-w
Primary Topic
Copper-based nanomaterials and applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Anomalous stabilization of excitons by metallic proximity

Ho Nyung Lee, Changhee Sohn, Baekjune Kang, S. S. A. Seo et al.
Communications Materials
Copper-based nanomaterials and applications
article

Anomalous stabilization of excitons by metallic proximity

Ho Nyung Lee, Changhee Sohn, Baekjune Kang, S. S. A. Seo, Du Li, Jeongkeun Song, Uksam Choi, Shan Lin, Li Yang
article en

Abstract

Abstract Metallic environments are generally expected to suppress excitons through strong dielectric screening, yet their influence can differ in composite systems where metallic and insulating regions coexist. Here, we investigate excitonic states in Pd x Cu 1-x CrO 2 thin films across a percolation-driven metal-insulator transition. Optical spectroscopy and many-body GW calculations show that CuCrO 2 hosts strongly bound excitons with a binding energy of about 489 meV. With increasing Pd substitution, the system approaches an insulator-to-metal transition near x = 0.5, consistent with the site-percolation threshold of a triangular lattice. In the pre-percolation regime, the excitonic resonance redshifts by 241 meV while the Tanguy continuum onset remains nearly unchanged, consistent with a substantial increase in exciton binding energy before metallization. An image-charge-based excitonic hydrogen model shows that isolated metallic regions can enhance electron-hole binding through image-charge interactions, whereas conventional screening is recovered once a continuous metallic network forms. Although this model provides a possible interpretation of the observed excitonic evolution, an alternative scenario in which metallic and excitonic responses originate from electronically distinct states and evolve independently cannot be excluded. These results reveal unusual metallic-excitonic coexistence near a percolation-driven metal-insulator transition and suggest nanoscale metallic proximity as a possible route for modifying excitonic interactions.

Communications Materials
Oak Ridge National Laboratory (US), University of Kentucky (US), Washington University in St. Louis (US), Ulsan National Institute of Science and Technology (KR)
National Science Foundation, U.S. Department of Energy, Battelle, Purdue University, UT-Battelle, National Research Foundation, National Research Foundation of Korea, Ministry of Science and ICT, South Korea, Office of Science, Division of Materials Research, Office of Advanced Cyberinfrastructure, Basic Energy Sciences
Affordable and clean energy
Openalex Percentile: Top 33%
Copper-based nanomaterials and applications
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