Research paperExperimental CharacterizationDirect measurement of terahertz conductivity in a gated monolayer semiconductorSu-Di Chen, Qixin Feng, Wenyu Zhao, Ruishi Qi et al.2024·10.1021/acs.nanolett.5c01605·arXiv:2409.17633AbstractTwo-dimensional semiconductors and their moiré superlattices have emerged as important platforms for investigating correlated electrons. However, many key properties of these systems, such as the frequency-dependent conductivity, remain experimentally inaccessible because of the mesoscopic sample size. Here we report a technique to directly measure the complex conductivity of electrostatically gated two-dimensional semiconductors in the terahertz frequency range. Applying this technique to a WSe₂ monolayer encapsulated in hBN, we observe clear Drude-like response between 0.1 and 1 THz, in a density range challenging to access even in DC transport. Our work opens a new avenue for studying tunable van der Waals heterostructures using terahertz spectroscopy.Read more
Monolayer WSe₂ flake encapsulated in hBN and electrostatically gated with a thin ITO backgate for on-chip terahertz conductivity measurement.5 characterizations3 properties2 figuresExperimentalWSe₂Studied MaterialhBNSubstrate / DielectricITOCapping Or ContactExpand
Research paperExperimental CharacterizationDirect measurement of terahertz conductivity in a gated monolayer semiconductorSu-Di Chen, Qixin Feng, Wenyu Zhao, Ruishi Qi et al.2024·10.1021/acs.nanolett.5c01605·arXiv:2409.17633AbstractTwo-dimensional semiconductors and their moiré superlattices have emerged as important platforms for investigating correlated electrons. However, many key properties of these systems, such as the frequency-dependent conductivity, remain experimentally inaccessible because of the mesoscopic sample size. Here we report a technique to directly measure the complex conductivity of electrostatically gated two-dimensional semiconductors in the terahertz frequency range. Applying this technique to a WSe₂ monolayer encapsulated in hBN, we observe clear Drude-like response between 0.1 and 1 THz, in a density range challenging to access even in DC transport. Our work opens a new avenue for studying tunable van der Waals heterostructures using terahertz spectroscopy.Read more
Monolayer WSe₂ flake encapsulated in hBN and electrostatically gated with a thin ITO backgate for on-chip terahertz conductivity measurement.5 characterizations3 properties2 figuresExperimentalWSe₂Studied MaterialhBNSubstrate / DielectricITOCapping Or ContactExpand
Research paperExperimental CharacterizationDirect measurement of terahertz conductivity in a gated monolayer semiconductorSu-Di Chen, Qixin Feng, Wenyu Zhao, Ruishi Qi et al.2024·10.1021/acs.nanolett.5c01605·arXiv:2409.17633AbstractTwo-dimensional semiconductors and their moiré superlattices have emerged as important platforms for investigating correlated electrons. However, many key properties of these systems, such as the frequency-dependent conductivity, remain experimentally inaccessible because of the mesoscopic sample size. Here we report a technique to directly measure the complex conductivity of electrostatically gated two-dimensional semiconductors in the terahertz frequency range. Applying this technique to a WSe₂ monolayer encapsulated in hBN, we observe clear Drude-like response between 0.1 and 1 THz, in a density range challenging to access even in DC transport. Our work opens a new avenue for studying tunable van der Waals heterostructures using terahertz spectroscopy.Read more
Monolayer WSe₂ flake encapsulated in hBN and electrostatically gated with a thin ITO backgate for on-chip terahertz conductivity measurement.5 characterizations3 properties2 figuresExperimentalWSe₂Studied MaterialhBNSubstrate / DielectricITOCapping Or ContactExpand
Research paperExperimental CharacterizationDirect measurement of terahertz conductivity in a gated monolayer semiconductorSu-Di Chen, Qixin Feng, Wenyu Zhao, Ruishi Qi et al.2024·10.1021/acs.nanolett.5c01605·arXiv:2409.17633AbstractTwo-dimensional semiconductors and their moiré superlattices have emerged as important platforms for investigating correlated electrons. However, many key properties of these systems, such as the frequency-dependent conductivity, remain experimentally inaccessible because of the mesoscopic sample size. Here we report a technique to directly measure the complex conductivity of electrostatically gated two-dimensional semiconductors in the terahertz frequency range. Applying this technique to a WSe₂ monolayer encapsulated in hBN, we observe clear Drude-like response between 0.1 and 1 THz, in a density range challenging to access even in DC transport. Our work opens a new avenue for studying tunable van der Waals heterostructures using terahertz spectroscopy.Read more
Monolayer WSe₂ flake encapsulated in hBN and electrostatically gated with a thin ITO backgate for on-chip terahertz conductivity measurement.5 characterizations3 properties2 figuresExperimentalWSe₂Studied MaterialhBNSubstrate / DielectricITOCapping Or ContactExpand