Among Dimensional Energy's funders are Microsoft and United. Photo via dimensionalenergy.com

Climatech company Dimensional Energy, which operates a Houston office, has scooped up $20 million in series A funding.

Founded in 2014, Ithaca, New York-based Dimensional Energy specializes in producing decarbonization technology, sustainable aviation fuel, and carbon emissions-derived fuels and materials. South Korea’s Envisioning Partners led the round, with participation from investors such as:

  • United Airlines’ Sustainable Flight Fund
  • Microsoft’s Climate Innovation Fund
  • RockCreek Group’s Smart Aviation Futures fund
  • DSC Investment
  • Delek US
  • Empire State Development
  • Climate Tech Circle

The company also says it’s working toward becoming a certified B Corporation. Businesses that achieve this certification seek to balance purpose and profit.

Dimensional Energy says the $20 million funding round positions it for “significant growth,” enabling it to:

  • Build the world’s first advanced power-to-liquid fuel plant and continue developing commercial power-to-liquid fuel plants.
  • Roll out the company’s initial B2B and B2C products, such as a fossil-free surf wax and a cruelty-free fat alternative for vegan food manufacturers.
  • Evolve the company’s proprietary reactor and catalyst technologies, which are being tested at its pilot plant in Tucson, Arizona.

“The world needs immediate and rapid decarbonization across all sectors, and Dimensional Energy shows great promise as a cleaner and lower-carbon aviation solution alongside reductions in industrial emissions,” Brandon Middaugh, senior director of Microsoft’s Climate Innovation Fund, says in a news release.

Dimensional Energy’s technology transforms carbon dioxide emissions into sustainable aviation fuel (SAF), renewable diesel, and synthetic paraffin that can be refined into more than 6,000 everyday products.

“Dimensional Energy particularly stood out to us for their differentiated technology, exceptional team, and significant progress to date towards producing SAF and other industrial products from CO2,” says Justin Heyman, managing director at RockCreek. “This technology can significantly reduce the environmental footprint of the airline industry.”

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Geothermal energy startup's $600M deal fuels surge in Houston VC funding

by the numbers

The venture capital haul for Houston-area startups jumped 23 percent from 2023 to 2024, according to the latest PitchBook-NVCA Venture Monitor.

The fundraising total for startups in the region climbed from $1.49 billion in 2023 to $1.83 billion in 2024, PitchBook-NVCA Venture Monitor data shows.

Roughly half of the 2024 sum, $914.3 million, came in the fourth quarter. By comparison, Houston-area startups collected $291.3 million in VC during the fourth quarter of 2023.

Among the Houston-area startups contributing to the impressive VC total in the fourth quarter of 2024 was geothermal energy startup Fervo Energy. PitchBook attributes $634 million in fourth-quarter VC to Fervo, with fulfillment services company Cart.com at $50 million, and chemical manufacturing platform Mstack and superconducting wire manufacturer MetOx International at $40 million each.

Across the country, VC deals total $209 billion in 2024, compared with $162.2 billion in 2023. Nearly half (46 percent) of all VC funding in North America last year went to AI startups, PitchBook says. PitchBook’s lead VC analyst for the U.S., Kyle Stanford, says that AI “continues to be the story of the market.”

PitchBook forecasts a “moderately positive” 2025 for venture capital in the U.S.

“That does not mean that challenges are gone. Flat and down rounds will likely continue at higher paces than the market is accustomed to. More companies will likely shut down or fall out of the venture funding cycle,” says PitchBook. “However, both of those expectations are holdovers from 2021.”

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This story originally appeared on our sister site, InnovationMap.com.

Houston researchers harness dialysis for new wastewater treatment process

waste not

By employing medical field technology dialysis, researchers at Rice University and the Guangdong University of Technology in China uncovered a new way to treat high-salinity organic wastewater.

In the medical field, dialysis uses a machine called a dialyzer to filter waste and excess fluid from the blood. In a study published in Nature Water, Rice’s team found that mimicking dialysis can separate salts from organic substances with minimal dilution of the wastewater, addressing some of the limitations of previous methods.

The researchers say this has the potential to lower costs, recover valuable resources across a range of industrial sectors and reduce environmental impacts.

“Traditional methods often demand a lot of energy and require repeated dilutions,” Yuanmiaoliang “Selina” Chen, a co-first author and postdoctoral associate in Elimelech’s lab at Rice, said in a news release. “Dialysis eliminates many of these pain points, reducing water consumption and operational overheads.”

Various industries generate high-salinity organic wastewater, including petrochemical, pharmaceutical and textile manufacturing. The wastewater’s high salt and organic content can present challenges for existing treatment processes. Biological and advanced oxidation treatments become less effective with higher salinity levels. Thermal methods are considered “energy intensive” and susceptible to corrosion.

Ultimately, the researchers found that dialysis effectively removed salt from water without requiring large amounts of fresh water. This process allows salts to move into the dialysate stream while keeping most organic compounds in the original solution. Because dialysis relies on diffusion instead of pressure, salts and organics cross the membrane at different speeds, making the separation method more efficient.

“Dialysis was astonishingly effective in separating the salts from the organics in our trials,” Menachem Elimelech, a corresponding author on the study and professor of civil and environmental engineering and chemical and biomolecular engineering at Rice, said in a news release. “It’s an exciting discovery with the potential to redefine how we handle some of our most intractable wastewater challenges.”