Rise Reforming converts stranded biogas from wastewater plants, farms, and landfills into valuable chemicals like dimethyl ether, methanol, and dimethyl carbonate using modular, containerized technology. The startup recently joined Y Combinator's S26 batch.
Hi HN! This is George, Lucas, and Jona from Rise Reforming
(<a href="https://www.rise-reforming.com/">https://www.rise-reforming.com/</a>). We’re developing a process to convert gas produced at landfills, farms, and wastewater plants (“biogas”) into higher value chemicals. Our technology is modular, designed to be deployed and operated on-site. Think of us as a chemical project developer; we sit between biogas producers (suppliers) and chemical end users (customers). We pay biogas producers for their gas and we make money from selling our chemicals. We're starting with dimethyl ether (DME) as our beachhead chemical because of its high-margin use case in the cosmetics industry and ultimately targeting methanol – a versatile and widely used industrial chemical.<p>Being in a two sided market allows us to target two large problems.<p>(1) On the chemical side: The multi-trillion dollar U.S. chemical and fuel industries are vulnerable to geopolitical conflicts and climate-driven natural disasters. The Iran war has caused global methanol prices to skyrocket – even in the U.S., a net exporter of methanol.
(<a href="https://www.spglobal.com/energy/en/news-research/latest-news/chemicals/032026-global-methanol-prices-soar-in-response-to-middle-east-war#:~:text=the%20second%20quarter.-,Americas,-While" rel="nofollow">https://www.spglobal.com/energy/en/news-research/latest-news...</a> the US). In 2021, Winter Storm Uri wiped out 60% of U.S. organic chemicals production for at least a month (<a href="https://www.dallasfed.org/research/swe/2021/swe2102/swe2102c#:~:text=other%20vehicle%20parts.-,As,-much%20as%2080" rel="nofollow">https://www.dallasfed.org/research/swe/2021/swe2102/swe2102c...</a>). The problem? Centralized production and fossil-fuel dependence. The solution isn't unknown; decentralized, fossil-free production could insulate supply chains from these shocks. But distributed green chemical production has yet to become cost-competitive with the status quo. Unlocking it requires the right feedstock paired with the right process and strategy.<p>Also, the chemical industry’s reliance on fossil fuels makes it responsible for 5-6% of global greenhouse gas emissions. About 40% of the industry’s well-to-gate emissions
come from just the extraction, processing, and transportation of these fossil fuels<p>(<a href="https://rmi.org/resources/chemistry-in-transition-charting-solutions-for-a-low-emissions-chemical-industry/#:~:text=and%20energy%20use.-,Exhibit%205,-%3A%20Key%20Categories" rel="nofollow">https://rmi.org/resources/chemistry-in-transition-charting-s...</a>).<p>(2) Biogas is an ideal feedstock to address Problem 1. It is decentralized, plentiful, and a large part of it is not properly utilized. Biogas is a mixture of methane (CH4) and carbon dioxide (CO2), produced as a result of anaerobic digestion at landfills, farms, and wastewater plants, and can be used as a raw material in chemical manufacturing. The U.S. produces around 780 billion cubic feet of biogas a year – if we converted all that biogas into methanol, that’s about $20 billion a year. Currently, about 60% of this biogas is either burned for power/heat (low-margin and unreliable) or flared altogether. The rest is used in the highly subsidized renewable natural gas (RNG) market
(<a href="https://americanbiogascouncil.org/abcs-data-digest-lite-july-2025-primary-end-use-of-biogas/" rel="nofollow">https://americanbiogascouncil.org/abcs-data-digest-lite-july...</a>).
The result: many biogas producers leave substantial revenue on the table and experience huge
operational headaches.<p>Our modular technology takes in biogas, electricity, and water as inputs. Co-location with biogas
producers allows us to tap into their existing infrastructure and speeds up permitting vs a greenfield project. Our 3 step process is outlined below:<p>Step 1: We clean the biogas of contaminants. That means running the gas over specialized
adsorbents that trap any nasty sulfur-containing and silicon-containing compounds we don’t
want in our process.<p>Step 2: We reform that biogas into an intermediate gas called syngas through the
bi-reforming process, which combines the novel dry methane reforming reaction with the
legacy steam methane reforming reaction. Syngas is a versatile combination of H2 and CO and
is the building block for many chemicals, allowing us to be a platform company.<p>Step 3: Lastly, we upgrade that syngas into our end chemicals. We do this step using
conventional catalysts and operating conditions.<p>The modular approach paired with our patent-pending integrated process makes our solution one of the cheapest ways of making green chemicals.<p>Where are we today?<p>We’ve completed our proof-of-concept in the lab and just broke ground on our
pilot plant at a Chicagoland wastewater plant that currently flares all of its biogas. We will convert that wasted biogas into methanol. Estimated commissioning is Q1 2027.<p>We all met at the University of Chicago studying Molecular Engineering and started the company back in June 2024. Rise Reforming’s first iteration came after attending a talk from an Argonne National Laboratory researcher on low-carbon fuels. In that seminar, we heard about a reaction called “dry reforming” wherein one can react CH4 with CO2, effectively eliminating both pollutants and making useful syngas (CO + H2). We realized that this reaction could enable cheaper decarbonization of chemicals than the legacy electrolysis pathway and started to build a technoeconomic analysis.<p>George has a background in energy generation, storage, and carbon capture. He was an early
employee at Highland Electric Fleets (now a unicorn) and later worked at Nexamp, GenH, and Mantel Capture – researching various battery chemistries, building a first-of-a-kind (FOAK) modular hydropower system, and helping prove a novel point-source capture prototype. He also conducted battery research at UChicago's Patel Lab and Rowan Group, co-authoring two papers.<p>Lucas led the design, procurement, construction, and operation of Rise Reforming’s bench-scale reforming unit with controls that operated successfully for over 1800+ continuous hours. Prior to Rise, he worked at Avangrid (Iberdrola Group) with the offshore wind project services team and did transmutation research of spent nuclear fuel at Argonne National Laboratory.<p>Jona also studied Molecular Engineering at the University of Chicago. He grew up around the marine industry and brings deep knowledge of the space to the team. While at UChicago, he conducted research in the Patel Lab on batteries and sustainable polymer applications and built novel equipment for the lab, including a high-throughput cyclic voltammetry battery performance testing device. Our advisory board has 220+ combined years in aerosols, permitting/safety, low-carbon fuels, catalysts, scale-up, automated modular chemical plants, and wastewater treatment.<p>Here’s our launch video if you want to put faces to the names: <a href="https://youtu.be/Bx_ASPapxlQ?si=PAlqvd1eUhW8kjJm" rel="nofollow">https://youtu.be/Bx_ASPapxlQ?si=PAlqvd1eUhW8kjJm</a>.<p>We’d appreciate any feedback, questions, or advice. Thank you for reading!
George, Lucas, and Jona
# Home | Rise Reforming
Source: [https://www.rise-reforming.com/](https://www.rise-reforming.com/)
## Unlocking resilience for the chemical industry
## Chemical production iscentralizedandfossil fuel\- dependent, making it vulnerable to geopolitical events and natural disasters
## Biogasis the ideal domestic feedstock: the U\.S\. produces enough biogas to makeover $20 billionworth of chemicals annually, but 60% is wasted or flared in low\-margin applications
## We convert stranded biogas from wastewater plants, farms, and landfills on\-site into valuable chemicals like dimethyl ether \(DME\), methanol, and dimethyl carbonate \(DMC\)
##### Supply\-Secure
We convert domestic raw biogas into chemicals, removing the reliance on fossil fuels and vulnerable supply chains\.
##### Modular
Our technology fits inside a shipping container, allowing for rapid and in\-situ deployment, quicker payback, streamlined permitting, and access to the cheapest biogas\.
##### Scalable
We can scale with your facility, easily adding or subtracting modules, ensuring long\-term financial growth\.
##### Price Competitive
Our proprietary process enables us to produce DME that competes pricewise with petrochemical DME and the cheapest green methanol & DMC available\.
##### Low\-Carbon
Our modules utilize waste gases to produce chemicals without the extraction, processing, and transportation of fossil fuels as raw materials\.
Pilot container has arrived at our host site \(Chicagoland wastewater plant\), officially kicking off construction\.
July 2026
Rise Reforming joins Y Combinator’s S26 batch to accelerate scale\-up and time to market\.
May 2026
Signed a binding supply agreement and multiple MOUs with biogas producers\. Signed a conditional DME offtake agreement for our first commercial unit\.
April 2026
> Proof\-of\-concept complete after 1800\+ hours of stable syngas production\. Next, with pilot plant designs ready, we're taking our technology to live biogas\.
March 2026
> Pre\-seed round of funding closed \($650k\) towards completing proof\-of\-concept, filing process IP, and finalizing our plans for the pilot plant\.
December 2025
> Rise Reforming plants its roots at Illinois Institute of Technology's incubator lab to continue R&D\. Nina Kritikos joins as the first hire\.
August 2025
Funding secured from UChicago accelerators\. CEO George Rose named Climate Fellow by the 776 Foundation, led by Reddit Co\-Founder Alexis Ohanian\.
May 2025
The team takes home the European Aerosols Federation 2025 Start\-Up Award and breaks boundaries as the youngest presenters at Paris Packaging Week\.
January 2025
## Latest
Here's what we've been up to
## Partner With Us
We are looking for visionary collaborators and investors to scale our low\-carbon chemical production\.
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