A Preliminary Study on the New Technology of Solar Hydrogen Production
May 17, 2022
A research team from MIT and the National Renewable Energy Laboratory (NREL) has successfully developed and demonstrated a thermophotovoltaic (TPV) cell capable of converting heat more efficiently than conventional steam turbines, according to reports. electricity, and the cost is very low. This has huge implications for future power stations and grid energy storage.
Thermophotovoltaic (TPV) mainly converts light of infrared wavelength into electric energy through photovoltaic effect, and can realize the method of energy storage and conversion. The researchers plan to integrate such TPV cells into grid-scale thermal batteries. The system will absorb excess energy from renewable sources such as solar energy and store this energy in a highly insulated thermal graphite reservoir. When energy is needed, such as on cloudy days, the TPV battery converts the heat into electricity and distributes the energy to the grid.
As we all know, most of human electricity comes from thermal energy, namely burning coal or natural gas, nuclear fission, concentrating solar energy, which is used to boil water and spin steam turbines to produce electricity. Over the past century and a half, it has become ubiquitous around the world as a mature, well-optimized technology with known strengths and limitations.
One of the limitations is efficiency. While some turbines have successfully converted 60% of the energy of a heat source into electricity, the average turbine operates at only 35% efficiency. Another limitation is heat, and steam turbines rely on components that must operate at certain temperature thresholds.
The new design aims to capture higher-energy photons from higher-temperature sources, thanks to the use of higher-bandgap materials and multiple junctions. In tests between 1900 degrees Celsius and 2400 degrees Celsius, the new TPV cells maintained about 40 percent efficiency. The average efficiency of early TPV cells was around 20%, and the previous record for the highest efficiency was 32%.
The above research results have been recently published in the famous scientific journal "Nature".

The researchers write, “TPV’s 40 percent efficiency is notable because it now makes TPV a heat engine technology that can compete with turbines. 40 percent efficiency is already higher than the average U.S. turbine-based heat engine efficiency, but What makes TPVs more attractive than turbines is their potential for lower cost, faster response times, ease of maintenance, ease of integration with external heat sources, and fuel flexibility.”
Operating in a temperature range "suitable for natural gas or hydrogen combustion," the new heat engine technology is understood to hold promise for the next generation of low-emission power plants that can operate at lower cost from combustion sources Extract more power. In the case of green hydrogen, such a plant could emit no carbon.

Asegun Henry, a professor in MIT's Department of Mechanical Engineering and one of the researchers on the project, said: "Thermal photovoltaic cells are the final critical step in proving that thermal batteries are a viable concept. It is on the road to promoting renewable energy and achieving a zero-carbon grid. absolutely critical step.







