Evidence of high-temperature exciton condensation in two-dimensional atomic double layers.
basic_science · Level V
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- Also identified by DOI 10.1038/s41586-019-1591-7.
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Abstract
A Bose-Einstein condensate is the ground state of a dilute gas of bosons, such as atoms cooled to temperatures close to absolute zero<sup>1</sup>. With much smaller mass, excitons (bound electron-hole pairs) are expected to condense at considerably higher temperatures<sup>2-7</sup>. Two-dimensional van der Waals semiconductors with very strong exciton binding are ideal systems for the study of high-temperature exciton condensation. Here we study electrically generated interlayer excitons in MoSe<sub>2</sub>-WSe<sub>2</sub> atomic double layers with a density of up to 10<sup>12</sup> excitons per square centimetre. The interlayer tunnelling current depends only on the exciton density, which is indicative of correlated electron-hole pair tunnelling<sup>8</sup>. Strong electroluminescence arises when a hole tunnels from WSe<sub>2</sub> to recombine with an electron in MoSe<sub>2</sub>. We observe a critical threshold dependence of the electroluminescence intensity on exciton density, accompanied by super-Poissonian photon statistics near the threshold, and a large electroluminescence enhancement with a narrow peak at equal electron and hole densities. The phenomenon persists above 100 kelvin, which is consistent with the predicted critical condensation temperature<sup>9-12</sup>. Our study provides evidence for interlayer exciton condensation in two-dimensional atomic double layers and opens up opportunities for exploring condensate-based optoelectronics and exciton-mediated high-temperature superconductivity<sup>13</sup>.