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IMPACT OF MECHANICAL STRESS ON MOBILITY & DEVICE CURRENT OF PLANAR MOSFET

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dc.contributor.author Mohapatra, Jayakushna
dc.date.accessioned 2022-06-02T13:03:35Z
dc.date.available 2022-06-02T13:03:35Z
dc.date.issued 2013-06
dc.identifier.uri http://localhost:8081/xmlui/handle/123456789/15406
dc.description.abstract Strain engineering is used to enhance device performance commensurately with the physical scaling in contemporary technology. Therefore, strain engineering is an integral part of a state-of-the-art CMOS technology flow. Strain engineering is used to introduce favourable mechanical stress in the channel to enhance CMOS performance. In the era of nano-technology devices are working in the near ballistic regime. In this regime of operation performance of device depends on the injection velocity (V) and backscattering ratio (r), so here we analyze how these parameters depends on stress. It is observed that uniaxial tensile stress reduces the backscattering ratio due to modulation in KT-layer thickness and carrier mean free path for backscattering. Tensile stress also splits the valley degeneracy, which change the probability of occupancy of carrier in different valley. It also improve injection velocity near the virtual source end by reducing the carrier effective mass. Impact of drive current under uniaxial strain is analyzed in term of mean-free-path, KT-layer thickness, ballistic efficiency and injection velocity en_US
dc.description.sponsorship INDIAN INSTITUTE OF TECHNOLOGY ROORKEE en_US
dc.language.iso en. en_US
dc.publisher I I T ROORKEE en_US
dc.subject Strain Engineering en_US
dc.subject Physical Scaling en_US
dc.subject State-of-the-Art CMOS en_US
dc.subject Backscattering Ratio en_US
dc.title IMPACT OF MECHANICAL STRESS ON MOBILITY & DEVICE CURRENT OF PLANAR MOSFET en_US
dc.type Other en_US
dc.accession.number G22260 en_US


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