MIT Energy Initiative funds seven early-stage energy research projects

Recovering from the past and transitioning to a better energy future

U.S. carbon capture storage hit by inflation, Trump

The promises and pitfalls of geoengineering

MITEI’s Future Energy Systems Center starts 10 new projects to accelerate decarbonization efforts

Interfacial electrolyte effects on aqueous CO2 reduction: Learning from enzymes to develop inorganic approaches

Leaching characteristics of biomass ash-based binder in neutral and acidic media

Electric-gas infrastructure planning for deep decarbonization of energy systems

Hard-to-Abate Sectors: The role of industrial carbon capture and storage (CCS) in emission mitigation

Direct Comparison of Numerical Simulations and Experiments of CO2 Injection and Migration in Geologic Media: Value of Local Data and Forecasting Capability

Electrochemically Mediated Direct CO2 Capture by a Stackable Bipolar Cell

Sustainable production of ammonia fertilizers from biomass

Leveraging Free Volume Manipulation to Improve the Membrane Separation Performance of Amine‐Functionalized PIM‐1

Methane Detection with a Tungsten‐Calix[4]arene‐Based Conducting Polymer Embedded Sensor Array

Sequential approach to joint flow‐seismic inversion for improved characterization of fractured media

Coupled multiphase flow and poromechanics: A computational model of pore pressure effects on fault slip and earthquake triggering

CO2 migration along faults in carbon capture and sequestration projects: Field validation and stochastic modeling of fault properties

Developing models to understand opportunities and challenges for electrochemically-mediated carbon capture systems

Integrated CO2 capture with mists and conversion to high-value products

Technologies to remove carbon dioxide from the air: A reality check