Area of research
Atmospheric Science · Global and Planetary Change
Research interest
Research interests include Environmental science, Aerosol, Climatology, Atmospheric sciences, Climate model, and Coupled model intercomparison project.
Where Dust Comes From: Global Assessment of Dust Source Attributions With AeroCom Models
Future Climate Change Under SSP Emission Scenarios With GISS‐E2.1
Climate model projections from the Scenario Model Intercomparison Project (ScenarioMIP) of CMIP6
AeroCom phase III multi-model evaluation of the aerosol life cycle and optical properties using ground- and space-based remote sensing as well as surface in situ observations
An overview of the ORACLES (ObseRvations of Aerosols above CLouds and their intEractionS) project: aerosol–cloud–radiation interactions in the southeast Atlantic basin
GISS‐E2.1: Configurations and Climatology
CMIP6 Historical Simulations (1850–2014) With GISS‐E2.1
An overview of the ORACLES (ObseRvations of Aerosols above CLouds and their intEractionS) project: aerosol-cloud-radiation interactions in the Southeast Atlantic basin
Multi-model evaluation of aerosol optical properties in the AeroCom phase III Control experiment, using ground and space based columnar observations from AERONET, MODIS, AATSR and a merged satellite product as well as surface in-situ observations from GAW sites
Aerosol–Cloud–Meteorology Interaction Airborne Field Investigations: Using Lessons Learned from the U.S. West Coast in the Design of ACTIVATE off the U.S. East Coast
Evaluation of global simulations of aerosol particle and cloud condensation nuclei number, with implications for cloud droplet formation
The Model Intercomparison Project on the climatic response toVolcanic forcing (VolMIP): experimental design and forcing input data for CMIP6
Evaluation of observed and modelled aerosol lifetimes using radioactive tracers of opportunity and an ensemble of 19 global models
Configuration and assessment of the GISS ModelE2 contributions to the CMIP5 archive
The AeroCom evaluation and intercomparison of organic aerosol in global models
Intercomparison and evaluation of global aerosol microphysical properties among AeroCom models of a range of complexity
CMIP5 historical simulations (1850–2012) with GISS ModelE2
Potential of gas chromatography–atmospheric pressure chemical ionization–time-of-flight mass spectrometry for the determination of sterols in human plasma
Radiative forcing of the direct aerosol effect from AeroCom Phase II simulations
Evaluation of aerosol mixing state classes in the GISS modelE‐MATRIX climate model using single‐particle mass spectrometry measurements
Stoichiometry-controlled FeP nanoparticles synthesized from a single source precursor
Application of the CALIOP layer product to evaluate the vertical distribution of aerosols estimated by global models: AeroCom phase I results