5 research outputs found

    COVID-19 lockdown induced changes in NO2 levels across India observed by multi-satellite and surface observations

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    © Author(s) 2021. This work is distributed under the Creative Commons Attribution 4.0 License.We have estimated the spatial changes in NO 2levels over different regions of India during the COVID-19 lockdown (25 March-3 May 2020) using the satellite-based tropospheric column NO 2observed by the Ozone Monitoring Instrument (OMI) and the Tropospheric Monitoring Instrument (TROPOMI), as well as surface NO 2concentrations obtained from the Central Pollution Control Board (CPCB) monitoring network. A substantial reduction in NO 2levels was observed across India during the lockdown compared to the same period during previous business-as-usual years, except for some regions that were influenced by anomalous fires in 2020. The reduction (negative change) over the urban agglomerations was substantial (~20 %-40 %) and directly proportional to the urban size and population density. Rural regions across India also experienced lower NO 2values by ~15 %-25 %. Localised enhancements in NO 2associated with isolated emission increase scattered across India were also detected. Observed percentage changes in satellite and surface observations were consistent across most regions and cities, but the surface observations were subject to larger variability depending on their proximity to the local emission sources. Observations also indicate NO 2enhancements of up to~25%during the lockdown associated with fire emissions over the north-east of India and some parts of the central regions. In addition, the cities located near the large fire emission sources show much smaller NO 2reduction than other urban areas as the decrease at the surface was masked by enhancement in NO 2due to the transport of the fire emissions.Peer reviewedFinal Published versio

    Magnetic Proximity induced efficient charge-to-spin conversion in large area PtSe2_{2}/Ni80_{80}Fe20_{20} heterostructures

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    As a topological Dirac semimetal with controllable spin-orbit coupling and conductivity, PtSe2_2, a transition-metal dichalcogenide, is a promising material for several applications from optoelectric to sensors. However, its potential for spintronics applications is yet to be explored. In this work, we demonstrate that PtSe2_{2}/Ni80_{80}Fe20_{20} heterostructure can generate a large damping-like current-induced spin-orbit torques (SOT), despite the absence of spin-splitting in bulk PtSe2_{2}. The efficiency of charge-to-spin conversion is found to be (−0.1±0.02)(-0.1 \pm 0.02)~nm−1^{-1} in PtSe2_{2}/Ni80_{80}Fe20_{20}, which is three times that of the control sample, Ni80_{80}Fe20_{20}/Pt. Our band structure calculations show that the SOT due to the PtSe2_2 arises from an unexpectedly large spin splitting in the interfacial region of PtSe2_2 introduced by the proximity magnetic field of the Ni80_{80}Fe20_{20} layer. Our results open up the possibilities of using large-area PtSe2_{2} for energy-efficient nanoscale devices by utilizing the proximity-induced SOT.Comment: 18 pages, 4 figure
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