Low Temperature Dissipation Scenarios in Palladium Nano-mechanical Resonators

dc.contributor.authorRebari, S.
dc.date.accessioned2017-07-19T07:33:09Z
dc.date.available2017-07-19T07:33:09Z
dc.date.issued2017-07-19
dc.description.abstractBelow 4.2K most materials except liquid helium freeze. Even at these temperatures one sees thermal, acoustic and mechanical properties of matter change vibrantly as a function of temperature. In perfect solids there must be nearly zero dissipation as one approaches zero temperature,but there are always defects, grain boundaries, contamination etc., that cause change in mechanical systems at ultra low temperatures. A simple phenomenological model involves assuming there are two level systems (TLS) that couple to phonons and cause the solids to dissipate energy. There is a whole body of data on bulk properties of solids explained in the scope of TLS models. Especially interesting is glass like behaviour shown by both amorphous and crystalline solids. Nano-mechanical resonators are miniature analogues of bulk resonant structures like bridges spring boards etc. These systems have also shown characteristic features of TLS. In this thesis we investigate Palladium (Pd) nano-mechanical resonators that are few microns long and (200 􀀀 400) nm wide and 80 nm thick. Metallic resonators are slightly simpler systems than hybrid metal dielectric multi-layers. We chose Pd as a model system where we can change its intrinsic elastic properties drastically with addition of hydrogen (H2), as H2 adsorbed in Pd produces a compressive stress. We probe the response of these beams in the tensile limit due to relative thermal contraction of the substrates at cryogenic temperatures below 4:2 K typically 150 mK to 1:5 K as well as in a softer limit when the system was exposed to H2 exchange gas. The goal of this study is to modify the TLS landscape with strain introduced by adding H2. We discuss detailed data sets with and without H2 in the context of TLS phenomenology.en_US
dc.description.provenanceSubmitted by Shameer K K (shameer@iisermohali.ac.in) on 2017-07-19T07:33:09Z No. of bitstreams: 1 yet to get consent.doc: 9216 bytes, checksum: 1221986c6923291e9b1d4c772a630284 (MD5)en
dc.description.provenanceMade available in DSpace on 2017-07-19T07:33:09Z (GMT). No. of bitstreams: 1 yet to get consent.doc: 9216 bytes, checksum: 1221986c6923291e9b1d4c772a630284 (MD5) Previous issue date: 2017-07-19en
dc.description.sponsorshipIISER-Men_US
dc.guideVenkatesan, A.
dc.identifier.urihttp://hdl.handle.net/123456789/843
dc.language.isoenen_US
dc.publisherIISER-Men_US
dc.subjectPhysicsen_US
dc.subjectMesoscopic Systemsen_US
dc.subjectPalladiumen_US
dc.subjectNano Electro-Mechanical Systemsen_US
dc.titleLow Temperature Dissipation Scenarios in Palladium Nano-mechanical Resonatorsen_US
dc.typeThesisen_US

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