Research paperExperimental CharacterizationComputational MultiscaleMechanically-reconfigurable van der Waals devices via low-friction gold slidingAndrew Z. Barabas, Ian Sequeira, Yuhui Yang, Aaron H. Barajas-Aguilar et al.2025·10.1007/b117574·arXiv:2212.02536AbstractInterfaces of van der Waals (vdW) materials such as graphite and hexagonal boron nitride (hBN) exhibit low-friction sliding due to their atomically-flat surfaces and weak vdW bonding. We demonstrate that microfabricated gold also slides with low friction on hBN. This enables the arbitrary post-fabrication repositioning of device features both at ambient conditions as well as in-situ to a measurement cryostat. We demonstrate mechanically-reconfigurable vdW devices where device geometry and position are continuously-tunable parameters. By fabricating slidable top gates on a graphene-hBN device, we produce a mechanically-tunable quantum point contact where electron confinement and edge-state coupling can be continuously modified. Moreover, we combine in-situ sliding with simultaneous electronic measurements to create new types of scanning probe experiments, where gate electrodes and even entire vdW heterostructures devices can be spatially scanned by sliding across a target.Read more
Microfabricated gold squares/sliding features deposited directly on hBN for AFM friction measurements.3 preparations1 characterization10 properties1 figureExperimentalAuStudied MaterialhBNStudied MaterialExpand
hBN-encapsulated graphene device with movable gold top gates used to define a mechanically tunable quantum point contact.2 preparations1 characterization4 properties1 figureExperimentalCStudied MaterialhBNStudied MaterialSiO₂Substrate / DielectricSiSubstrate / DielectricAuStudied MaterialExpand
Research paperExperimental CharacterizationComputational MultiscaleMechanically-reconfigurable van der Waals devices via low-friction gold slidingAndrew Z. Barabas, Ian Sequeira, Yuhui Yang, Aaron H. Barajas-Aguilar et al.2025·10.1007/b117574·arXiv:2212.02536AbstractInterfaces of van der Waals (vdW) materials such as graphite and hexagonal boron nitride (hBN) exhibit low-friction sliding due to their atomically-flat surfaces and weak vdW bonding. We demonstrate that microfabricated gold also slides with low friction on hBN. This enables the arbitrary post-fabrication repositioning of device features both at ambient conditions as well as in-situ to a measurement cryostat. We demonstrate mechanically-reconfigurable vdW devices where device geometry and position are continuously-tunable parameters. By fabricating slidable top gates on a graphene-hBN device, we produce a mechanically-tunable quantum point contact where electron confinement and edge-state coupling can be continuously modified. Moreover, we combine in-situ sliding with simultaneous electronic measurements to create new types of scanning probe experiments, where gate electrodes and even entire vdW heterostructures devices can be spatially scanned by sliding across a target.Read more
Microfabricated gold squares/sliding features deposited directly on hBN for AFM friction measurements.3 preparations1 characterization10 properties1 figureExperimentalAuStudied MaterialhBNStudied MaterialExpand
hBN-encapsulated graphene device with movable gold top gates used to define a mechanically tunable quantum point contact.2 preparations1 characterization4 properties1 figureExperimentalCStudied MaterialhBNStudied MaterialSiO₂Substrate / DielectricSiSubstrate / DielectricAuStudied MaterialExpand
Research paperExperimental CharacterizationComputational MultiscaleMechanically-reconfigurable van der Waals devices via low-friction gold slidingAndrew Z. Barabas, Ian Sequeira, Yuhui Yang, Aaron H. Barajas-Aguilar et al.2025·10.1007/b117574·arXiv:2212.02536AbstractInterfaces of van der Waals (vdW) materials such as graphite and hexagonal boron nitride (hBN) exhibit low-friction sliding due to their atomically-flat surfaces and weak vdW bonding. We demonstrate that microfabricated gold also slides with low friction on hBN. This enables the arbitrary post-fabrication repositioning of device features both at ambient conditions as well as in-situ to a measurement cryostat. We demonstrate mechanically-reconfigurable vdW devices where device geometry and position are continuously-tunable parameters. By fabricating slidable top gates on a graphene-hBN device, we produce a mechanically-tunable quantum point contact where electron confinement and edge-state coupling can be continuously modified. Moreover, we combine in-situ sliding with simultaneous electronic measurements to create new types of scanning probe experiments, where gate electrodes and even entire vdW heterostructures devices can be spatially scanned by sliding across a target.Read more
Microfabricated gold squares/sliding features deposited directly on hBN for AFM friction measurements.3 preparations1 characterization10 properties1 figureExperimentalAuStudied MaterialhBNStudied MaterialExpand
hBN-encapsulated graphene device with movable gold top gates used to define a mechanically tunable quantum point contact.2 preparations1 characterization4 properties1 figureExperimentalCStudied MaterialhBNStudied MaterialSiO₂Substrate / DielectricSiSubstrate / DielectricAuStudied MaterialExpand
Research paperExperimental CharacterizationComputational MultiscaleMechanically-reconfigurable van der Waals devices via low-friction gold slidingAndrew Z. Barabas, Ian Sequeira, Yuhui Yang, Aaron H. Barajas-Aguilar et al.2025·10.1007/b117574·arXiv:2212.02536AbstractInterfaces of van der Waals (vdW) materials such as graphite and hexagonal boron nitride (hBN) exhibit low-friction sliding due to their atomically-flat surfaces and weak vdW bonding. We demonstrate that microfabricated gold also slides with low friction on hBN. This enables the arbitrary post-fabrication repositioning of device features both at ambient conditions as well as in-situ to a measurement cryostat. We demonstrate mechanically-reconfigurable vdW devices where device geometry and position are continuously-tunable parameters. By fabricating slidable top gates on a graphene-hBN device, we produce a mechanically-tunable quantum point contact where electron confinement and edge-state coupling can be continuously modified. Moreover, we combine in-situ sliding with simultaneous electronic measurements to create new types of scanning probe experiments, where gate electrodes and even entire vdW heterostructures devices can be spatially scanned by sliding across a target.Read more
Microfabricated gold squares/sliding features deposited directly on hBN for AFM friction measurements.3 preparations1 characterization10 properties1 figureExperimentalAuStudied MaterialhBNStudied MaterialExpand
hBN-encapsulated graphene device with movable gold top gates used to define a mechanically tunable quantum point contact.2 preparations1 characterization4 properties1 figureExperimentalCStudied MaterialhBNStudied MaterialSiO₂Substrate / DielectricSiSubstrate / DielectricAuStudied MaterialExpand