Low-Loss Charge Transfer Plasmons in Graphene/α-RuCl3 Heterostructures Below 40 K

  • Boyi Zhou
  • , Ran Jing
  • , Wenjun Zheng
  • , Xinzhong Chen
  • , Jiacheng Sun
  • , Zijian Zhou
  • , Heng Wang
  • , Lukas Wehmeier
  • , Erdong Song
  • , Bing Cheng
  • , Yinan Dong
  • , Matthew Cothrine
  • , David Mandrus
  • , G. L. Carr
  • , Xu Du
  • , Erik A. Henriksen
  • , D. N. Basov
  • , Mengkun Liu

Research output: Contribution to journalArticlepeer-review

Abstract

Charge transfer at material interfaces governs a wide range of physical properties, from electronic band structures to emergent collective excitations. In two-dimensional (2D) material heterostructures, charge transfer phenomena play important roles in enabling novel quantum phases, proximity effects, and tunable plasmonic responses. One representative charge transfer interface is formed between α-RuCl3, a van der Waals material with high electron affinity, and graphene. Significant charge transfer across this interface induces the formation of charge-transfer plasmon polaritons (CPPs), hybrid excitations between light and charge oscillations. However, previous studies found that as the charge transfer process takes place, α-RuCl3 becomes lossy, which limits the quality factor of CPPs. Here, we investigate CPPs down to 10 K using a home-built scattering-type scanning near-field optical microscope (s-SNOM) optimized for low-temperature measurements. Our study reveals a dramatic suppression of plasmon loss channels below 40 K, contributing to a significant enhancement in the plasmonic quality factor. This reduction in loss is likely attributed to the blue shift of the correlation-induced Mott gap in α-RuCl3 with decreasing temperature, along with the reduction of phonon scattering at low temperature. Our results highlight the potential of using s-SNOM and CPPs to study complex 2D interfaces and reveal correlated electron dynamics in the underlying material.

Original languageEnglish
Pages (from-to)3082-3090
Number of pages9
JournalACS Photonics
Volume12
Issue number6
DOIs
StatePublished - Jun 18 2025

Keywords

  • Mott gap
  • charge transfer plasmons
  • correlated electron systems
  • cryogenic nanophotonics
  • s-SNOM

Fingerprint

Dive into the research topics of 'Low-Loss Charge Transfer Plasmons in Graphene/α-RuCl3 Heterostructures Below 40 K'. Together they form a unique fingerprint.

Cite this