Currently, methane leak detection requires human evaluation. With this innovative new company's tech, this process can be automated. Photo via Getty Images

A Houston startup that is developing a technology to detect methane leaks has moved on to phase two in Chevron's unique business accelerator.

Aquanta Vision Technologies, a Houston-based climate-tech startup, was selected to participate in the scale-up phase of Chevron Studio, a Houston program that matches entrepreneurs with technologies to turn them into businesses. Aquanta's computer vision software completely automates the identification of methane in optical gas imaging, or OGI. The technology originated from Colorado State University and CSU STRATA Technology Transfer.

Babur Ozden, a tech startup entrepreneur, along with Marcus Martinez, the lead inventor and Dan Zimmerle, co-inventor and director of METEC at CSU Energy Institute, came up with the technology to identify the presence and motion of methane in live video streams. Currently, this process of identifying methane requires a human camera operator to interpret the images. This can often be unreliable in the collection of emissions data.

Aquanta’s technology requires no human intervention and is universally compatible with all OGI cameras. Currently, only about 10 percent of the 20.5 million surveys done worldwide use this type of technology as it is extremely expensive to produce. Ozden said he hopes Aquanta will change that model.

“What we are doing — we are democratizing this feature, this capability, independent of the camera make and model,” Ozden tells EnergyCapital.

Aquanta’s software will be downloadable from App stores to the technician’s computers or phones.

“Our goal is to eliminate the absolute reliance of human interpretation and to give operators a chance to make detections faster and more accurately,” Ozden says.

“Our ultimate ambition is to reduce our footprint.” he continues. “Companies like Chevron and other leading players in the oil and gas industry are becoming much more committed (to reducing emissions)."

Babur Ozden is the founder of Aquanta Vision. Photo via LinkedIn

Aquanta will now test its software under various scenarios and develop an early commercial version of the product. In the next and final phase of the program, the company will begin marketing the technology for commercial use.

The goal of Chevron Studio is to take innovative new technologies out of the labs at universities and to scale them up to commercial ventures. The company takes the intellectual property developed at these labs and provides a platform to match entrepreneurs with the technology. The program provides funding to take the technologies from the very beginning to pilot and field trials. The National Renewable Energy Laboratory, or NREL, manages Chevron Studio and works closely with the entrepreneurs to guide them through the program.

Gautam Phanse, the strategic relations manager for Chevron Technology Ventures says he was impressed with Ozden’s background as an entrepreneur and in the technology he brought to the table.

“We are looking at experienced entrepreneurs. People who can take an idea and stand on their own and develop it into a business,” he tells EnergyCapital.

Earlier this year, Phanse spoke to InnovationMap about Chevron Studio and its mission to match entrepreneurs with promising technologies coming out of universities and labs. He said the current focus areas for Chevron Studio are: carbon utilization, hydrogen and renewable energy, energy storage systems and solutions for circular economy.

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Houston researchers reach 'surprising' revelation in materials recycling efforts

keep it clean

Researchers at Rice University have published a study in the journal Carbon that demonstrates how carbon nanotube (CNT) fibers can be fully recycled without any loss in their structure or properties.

The discovery shows that CNT fibers could be used as a sustainable alternative to traditional materials like metals, polymers and the larger, harder-to-recycle carbon fibers, which the team hopes can pave the way for more sustainable and efficient recycling efforts.

“Recycling has long been a challenge in the materials industry — metals recycling is often inefficient and energy intensive, polymers tend to lose their properties after reprocessing and carbon fibers cannot be recycled at all, only downcycled by chopping them up into short pieces,” corresponding author Matteo Pasquali, director of Rice’s Carbon Hub and the A.J. Hartsook Professor of Chemical and Biomolecular Engineering, Materials Science and NanoEngineering and Chemistry, explained in a news release. “As CNT fibers are being scaled up, we asked whether and how these new materials could be recycled in the future .... We expected that recycling would be difficult and would lead to significant loss of properties. Surprisingly, we found that carbon nanotube fibers far exceed the recyclability potential of existing engineered materials, offering a solution to a major environmental issue.”

Rice researchers used a solution-spun CNT fiber that was created by dissolving fiber-grade commercial CNTs in chlorosulfonic acid, according to Rice. Mixing the two fibers led to complete redissolution and no sign of separation of the two source materials into different liquid phases. This redissolved material was spun into a mixed-source recycled fiber that retained the same structure and alignment, which was unprecedented.

Pasquali explained in a video release that the new material has properties that overlap with and could be a replacement for carbon fibers, kevlar, steel, copper and aluminum.

“This preservation of quality means CNT fibers can be used and reused in demanding applications without compromising performance, thus extending their lifecycle and reducing the need for new raw materials,” co-first author Ivan R. Siqueira, a recent doctoral graduate in Rice’s Department of Chemical and Biomolecular Engineering, said in a news release.

Other co-authors of the paper are Rice graduate alumni Oliver Dewey, now of DexMat; Steven Williams; Cedric Ginestra, now of LyondellBasell; Yingru Song, now a postdoctoral fellow at Purdue University; Rice undergraduate alumnus Juan De La Garza, now of Axiom Space; and Geoff Wehmeyer, assistant professor of mechanical engineering.

The research is part of the broader program of the Rice-led Carbon Hub, an initiative to develop a zero-emissions future. The work was also supported by the Department of Energy’s Advanced Research Project Agency, the Air Force Office of Scientific Research and a number of other organizations.

Pasquali recently led another team of Rice researchers to land a $4.1 million grant to optimize CNT synthesis. The funds came from Rice’s Carbon Hub and The Kavli Foundation. Read more here.

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Energy storage company secures $77.6 million to continue Texas expansion

growth ahead

Energy storage developer On.Energy announced it closed $77.6 million in construction credit facilities provided by Pathward N.A. and BridgePeak Energy Capital to build its 160 Megawatt-hour Palo de Agua battery storage portfolio across the state of Texas.

The new financing will allow the Miami-based company with project development offices in Houston to continue its expansion, which already includes 80 MWh of operational assets in Houston.

“In less than 12 months, we have managed to structure project finance credit solutions for more than 240 MWh, deploying critical infrastructure to one of the country’s most volatile power markets,” On.Energy CEO Alan Cooper said in a news release.

Cooper added that the Texas project triples the company’s installed and in-construction asset base in the U.S.

On.Energy uses its proprietary On.Command energy management system to implement customized, AI-driven solutions that support grid-scale projects and peak-shaving solutions that use energy storage to reduce electricity demand during peak hours.

By 2028, the company aims to have more than 2 GWh of battery energy storage scheduled for activation across California, Texas and Mexico.

“As Texas continues its prolific energy transition, On.Energy is providing the solutions to ensure grid reliance and resilience,” Christopher Soupal, Pathward divisional president and revenue lending officer, said in a news release.

“Pathward’s multi-project construction facility with On.Energy is another example of our commitment to the U.S. renewable energy sector, and we are proud to be their lending partner.”

Houston tech company lands DARPA grant to develop ocean energy system

fresh funding

Sugar Land-based advanced tech company Yokogawa Corporation of America, in collaboration with eight research institutions, has been awarded a $7.8 million grant from the Defense Advanced Research Projects Agency (DARPA) to develop and test a biologically fueled energy system.

The system known as Persistent Oceanographic Device Power, or PODPower, shows a pioneering advancement in microbial fuel cells (MFCs), a technology that aims to redefine how energy is harvested from oceans.

“Advancements in this area will play a role in our future as we harness this knowledge to address GHG emissions, produce clean energy, and enhance waste treatment,” Amro Hassanein, co-principal investigator and technology strategist, said in a news release.

The grant funds the system's Phase 1 development and deployment, and research is scheduled to continue through the summer of 2026. The company says the project has potential applications in climate monitoring, marine research, national security and clean energy generation.

The initiative will attempt to develop an MFC capable of generating up to 10 watts of continuous power for oceanic research and sensing devices through the use of microorganisms found in ocean water and specific bacteria samples.

“MFCs can process a variety of organic substrates including wastewater, agricultural residues, industrial byproducts, and marine biomass, demonstrating their versatility in applications such as on-site power generation bioremediation and biosensing,” Hassanein said in the news release.

As the only private company in the project, Yokogawa will lead the technical aspect to optimize the MFC technology through precision monitoring, data acquisition and machine learning algorithms.

The project team also includes collaborators from:

  • University of Maryland
  • Harvard University
  • Battelle
  • George Washington University
  • The Institute of Marine and Environmental Technology at the University of Maryland
  • Baltimore County
  • James Madison University
  • Johns Hopkins University
  • The University of Delaware.

Yokogawa believes that the system could power ocean sensing devices that provide key information for monitoring climate change, maintaining national security and understanding marine environments. The project plans to integrate bio-inspired organic matter collection systems, advanced fermentation processes and novel electrode designs.

Yokogawa Corporation of America is an affiliate of Tokyo-based manufacturing company Yokogawa. It moved its headquarters to Sugar Land in 2009.