SG Publications
This page lists the publications in the ESD Publications database, sorted by first author and year. To filter the list, select one or more Research Program(s) to filter the list, or else specify a publication year (e.g., 2011). Options to view other pages of the list are provided at the bottom of the page.
| Publication Citation |
|---|
| Van Harten, G., D.J. Diner, B.J.S. Daugherty, B.E. Rheingans, M.A. Bull, F.C. Seidel, R.A. Chipman, B. Cairns, A.P. Wasilewski, and K.D. Knobelspiesse (2018), Calibration and validation of Airborne Multiangle SpectroPolarimetric Imager (AirMSPI) polarization measurements, Appl. Opt., 57, 4499-4513, doi:10.1364/AO.57.004499. |
| Várnai, T., and A. Marshak (2018), Satellite Observations of Cloud-Related Variations in Aerosol Properties, Atmosphere, 9, 430, doi:10.3390/atmos9110430. |
| Varon, D.J., D.J. Jacob, J. McKeever, D. Jervis, B.O.A. Durak, Y. Xia, and Y. Huang (2018), Quantifying methane point sources from fine-scale satellite observations of atmospheric methane plumes, Atmos. Meas. Tech., 11, 5673-5686, doi:10.5194/amt-11-5673-2018. |
| Vasilkov, A., E.-S. Yang, S. Marchenko, W. Qin, L. Lamsal, J. Joiner, N. Krotkov, D. Haffner, P.K. Bhartia, and R. Spurr (2018), A cloud algorithm based on the O2-O2 477 nm absorption band featuring an advanced spectral fitting method and the use of surface geometry-dependent Lambertian-equivalent reflectivity, Atmos. Meas. Tech., 11, 4093-4107, doi:10.5194/amt-11-4093-2018. |
| Venkataraman, C., M. Brauer, K. Tibrewal, P. Sadavarte, Q. Ma, A. Cohen, S. Chaliyakunnel, J. Frostad, Z. Klimont, R.V. Martin, D.B. Millet, S. Philip, K. Walker, and S. Wang (2018), Source influence on emission pathways and ambient PM2.5 pollution over India (2015–2050), Atmos. Chem. Phys., 18, 8017-8039, doi:10.5194/acp-18-8017-2018. |
| Vernier, J.-P., T.D. Fairlie, T. Deshler, V.M. Ratnam, H. Gadhavi, B.S. Kumar, and ….J.-B. Renard (2018), BATAL: The balloon measurement campaigns of the Asian tropopause aerosol layer, Bull. Am. Meteorol. Soc., 99, doi:10.1175/BAMS-D-17-0014.1. |
| Vernier, J.-P., T.D. Fairlie, T. Deshler, M.V.R. Atnam, H. Gadhavi, B.S. Kumar, M. Natarajan, A.K. Pandit, S.T.A.R. Aj, A.H. Kumar, A. Jayaraman, A.K. Singh, N.R. Astogi, P.R. Sinha, S. Kumar, S. Tiwari, T. Wegner, N. Baker, D. Vignelles, G. Stenchikov, I. Shevchenko, J. Smith, K. Bedka, A. Kesarkar, V. Singh, J. Bhate, V.R. Avikiran, M.D.R. Ao, S.R. Avindrababu, A. Patel, H. Vernier, F.G. Wienhold, H. Liu, T.N. Knepp, L. Thomason, J. Crawford, L. Ziemba, J. Moore, S. Crumeyrolle, M. Williamson, G. Berthet, F. Jégou, and J.-B. Renard (2018), Batal: The Balloon Measurement Campaigns of the Asian Tropopause Aerosol Layer, Bull. Am. Meteorol. Soc., 955, doi:10.1175/BAMS-D-17-0014.1. |
| Vernon, C.J., R. Bolt, T. Canty, and R.A. Kahn (2018), The impact of MISR-derived injection height initialization on wildfire and volcanic plume dispersion in the HYSPLIT model, Atmos. Meas. Tech., 11, 6289-6307, doi:10.5194/amt-11-6289-2018. |
| Veselovskii, I., P. Goloub, T. Podvin, D. Tanre, A. da Silva, P. Colarco, P. Castellanos, M. Korenskiy, Q. Hu, D.N. Whiteman, D. Pérez-Ramírez, P. Augustin, M. Fourmentin, and A. Kolgotin (2018), Characterization of smoke and dust episode over West Africa: comparison of MERRA-2 modeling with multiwavelength Mie–Raman lidar observations, Atmos. Meas. Tech., 11, 949-969, doi:10.5194/amt-11-949-2018. |
| Voss, N., T.H. Dixon, Z. Liu, R. Malservisi, M. Protti, and S. Schwartz (2018), Do slow slip events trigger large and great megathrust earthquakes? , Science Advances, 4, eaat8472, doi:10.1126/sciadv.aat8472. |
| Wall, C.J., D.L. Hartmann, M.M. Thieman, W.L. Smith, and P. Minnis (2018), The Life Cycle of Anvil Clouds and the Top-of-Atmosphere Radiation Balance over the Tropical West Pacific, J. Climate, 31, 10059-10080, doi:10.1175/JCLI-D-18-0154.1. |
| Wang, J.S., S.R. Kawa, G.J. Collatz, M. Sasakawa, L.V. Gatti, T. Machida, Y. Liu, and M.E. Manyin (2018), A global synthesis inversion analysis of recent variability in CO2 fluxes using GOSAT and in situ observations, Atmos. Chem. Phys., 18, 11097-11124, doi:10.5194/acp-18-11097-2018. |
| Wang, J., Y. Yue, Y. Wang, C. Ichoku, L. Ellison, and J. Zeng (2018), Mitigating Satellite-Based Fire Sampling Limitations in Deriving Biomass Burning Emission Rates: Application to WRF-Chem Model Over the Northern sub-Saharan African Region, J. Geophys. Res., 123, 507-528. |
| Wang, L., et al. (2018), Improved scheme for Cross-track Infrared Sounder geolocation assessment and optimization, J. Geophys. Res., 122, 519-536, doi:10.1002/2016JD025812. |
| Wang, R., E. Andrews, Y. Balkanski, O. Boucher, G. Myhre, B.H. Samset, M. Schulz, G.L. Schuster, M. Valari, and S. Tao (2018), Spatial Representativeness Error in the Ground-Level Observation Networks for Black Carbon Radiation Absorption, Geophys. Res. Lett., 45, 2106-2114, doi:10.1002/2017GL076817. |
| Wang, S., Y. Zhang, J. Hakkarainen, W. Ju, Y. Liu, F. Jiang, and W. He (2018), Distinguishing Anthropogenic CO2 Emissions From Different Energy Intensive Industrial Sources Using OCO-2 Observations: A Case Study in Northern China, J. Geophys. Res., 123, 9462-9473, doi:10.1029/2018JD029005. |
| Wang, T., K. DeGrandpre, Z. Lu, and J. Freymueller (2018), Complex surface deformation of Akutan volcano, Alaska revealed from InSAR time series, Int J Appl Earth Obs Geoinformation, 64, 171-180, doi:10.1016/j.jag.2017.09.001. |
| Wang, X., C.L. Heald, J. Liu, R.J. Weber, P. Campuzano-Jost, J.L. Jimenez, J.P. Schwarz, and A.E. Perring (2018), Exploring the observational constraints on the simulation of brown carbon, Atmos. Chem. Phys., 18, 635-653, doi:10.5194/acp-18-635-2018. |
| Wang, Y., S. Hioki, P. Yang, M.D. King, L. Di Girolamo, D. Fu, and B.A. Baum (2018), Inference of an Optimal Ice Particle Model through Latitudinal Analysis of MISR and MODIS Data, doi:10.3390/rs10121981. |
| Wang, Z., Y. Wang, J. Li, S. Henne, B. Zhang, J. Hu, and J. Zhang (2018), Cite This: Environ. Sci. Technol. 2018, 52, 2819−2826 pubs.acs.org/est Impacts of the Degradation of 2,3,3,3-Tetrafluoropropene into Trifluoroacetic Acid from Its Application in Automobile Air Conditioners in China, the United States, and Europe, Environ. Sci. Technol., doi:10.1021/acs.est.7b05960. |
