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ComfyUI hits $500M valuation as creators seek more control over AI-generated media

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ComfyUI, a startup that helps creators control image, video, and audio outputs from diffusion models with a node-based workflow, has raised a $30 million funding round at a $500 million valuation.

The round was led by Craft Ventures, with participation from other investors including Pace Capital, Chemistry, and TruArrow.

ComfyUI was started as an open-source project in 2023, shortly after the introduction of diffusion models. At that time, models like Midjourney and OpenAI’s DALL-E were barely functional, frequently making major mistakes, such as adding extra fingers to hands.

To address these limitations, the project founders developed a modular framework that gives creators granular control over every step of the generation process.

Their tool gained such significant traction among creative professionals that it eventually evolved into a formal startup. In late 2024, ComfyUI raised $19 million in Series A financing from investors including Chemistry Ventures, Cursor Capital, and Guillermo Rauch, founder of Vercel.

Although the latest diffusion models have come a long way from adding a sixth digit to hands, the need for the granular precision that ComfyUI offers has only grown.

“If you think about your typical prompt-based solution, like Midjourney or ChatGPT, you ask for something, it [gets only] 60% – 80% there,” Yoland Yan, ComfyUI’s co-founder and CEO, told TechCrunch. “But to change that remaining 20%, you have to try this slot machine.”

Yan (pictured left) compared the process to playing in a casino because prompting the model to make a small change can result in a completely different output, including overwriting the parts that were already perfect.

ComfyUI’s node-based interface allows creators to link specific components of the generation process, giving them full control over the quality of their final output.

“You cannot easily convey that message in the prompt box [of a foundational model],” Yan said.

Creators seem to agree, as ComfyUI claims to have over 4 million users.

The tool is being used by creative professionals for visual effects, animation, advertising, and even industrial design.

The startup says its offering has become such a necessary tool of the trade for technical artists and other creatives that it is not uncommon to see “ComfyUI artist or engineer” listed as a job title on studio job boards.

Although video and image foundational models continue to improve, Yan claims that they are far from perfect, and a tool like ComfyUI will continue to be in high demand.

“In the world where AI slop is going to be everywhere, the Comfy version of human-in-the -loop approach is going to win out most of the eyeballs in the end,” he said.

ComfyUI’s competitors include Weavy, a startup that was acquired by Figma last year.

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Discovered Materials is playing AI whack-a-mole to hunt cooler chips

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Chips running AI workloads are too hot: That’s one reason why data centers consume so much electricity and require cooling systems. And, inevitably, entrepreneurs are turning to AI to solve the problem it created.

Discovered Materials is the latest, with plans to use swarms of AI agents to find new materials that can be used to build more efficient integrated circuits. The startup said it recently closed a $9 million seed round from Lightspeed India Partners after emerging from from Y Combinator, with investment from Peak XV Partners and angel investors Paul Graham, Gokul Rajaram, and Thariq Shihipar.

Founders Advaith Sridhar and Akash Ramdas teamed up to launch the company, drawing on Ramdas’ experience earning a doctorate in materials science from Stanford, and Sridhar’s work on agents at Persona AI and Luma Labs.

The two have created a software pipeline that uses Anthropic models in a custom harness to generate material leads, and then turns to foundational physics models they’ve trained to run simulations that verify if the candidate materials are actually of interest.

“[Ramdas] was doing maybe 20 guesses a day during his PhD,” Sridhar told TechCrunch. “We’re able to do thousands of guesses a day now by having these agents run 24/7 on the cloud, exploring research directions that he gives them.”

Discovered Materials released examples of hundreds of new materials today, as well as their “Material Discovery Bench” today, which is designed to track how frontier models take on this challenge.

Companies like MatNex, SandboxAQ, and CuspAI have all launched similar efforts, but Discovered Materials is betting that a laser-focus on the thermal problems of semiconductor materials is the path to success. The startup says it has already discovered several materials that match the properties of existing materials used by major chipmakers, but can’t share more details about them.

One challenge is the engineering trade-space: If they find a material that might reduce heat generation or improve dissipation, it might be too difficult to actually manufacture a chip out of it, or its electrical properties are compromised.

“It’s a bit of playing whack-a-mole with atomic structures,” Hemant Mohapatra, the Lightspeed partner who led this round, told TechCrunch. “A material is only useful in the real world if all of them converge at once, which is what makes this a really interesting search problem.”

Mohapatra expects that the business of predicting novel substances will be commoditized as models continue to improve. The difference with Discovered Materials is Ramdas’ deep experience in the field, and the ability to run a lab that can rapidly experiment and validate the candidates — something he says the two founders have already done with several new materials.

When they find valuable candidates, Sridhar says the company will attempt to patent the use of the materials in GPUs, or the process by which chips can be made out of the substance, licensing them out to chipmakers. He hopes that they will have new materials worth patenting in the next year.

However, for all the excitement, we still haven’t seen any drugs or materials discovered by AI actually make a commercial impact. The closest is perhaps Insilico Medicine’s Renterosib, the first drug discovered with generative AI to make it into a Phase II clinical trial. On the materials side, promising candidates have been found, like MatNex’s rare-earth free permanent magnets or new semiconductor materials worked out by Panasonic and Citrine Informatics. But these haven’t been commercially deployed at scale yet.

These techniques may be coming into their own now as AI continues to improve, but it’s one reason why Mohapatra says that he doesn’t believe finding more candidates is the hold-up for AI materials science; instead, “filtering them correctly and synthesizing them is the bottleneck.”

While Sridhar believes that Discovered Materials’ unique data and expertise will help the startup compete with deep-pocketed frontier labs, he acknowledged that the reality is that “a lot of this will involve actually going into wet labs and like making things as well. And this is the process that cannot be sped up.”

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Google Play adds Venmo as a payment option

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Google said that it is adding Venmo as a payment option today on Google Play for purchases including games, apps, add-ons, and other digital content.

The company said that users can use Venmo’s wallet or other linked payment methods, such as bank accounts and cards, to pay for subscriptions or tip creators within different content-based apps.

Users can go to payment methods within their account’s settings to link a Venmo account. Google Play already offers other digital payment methods including PayPal and Cash App along with cards from American Express, Visa, Mastercard, Discover and JCB in the United States.

Outside the U.S., the company has also experimented with allowing users to pay for digital purchases using cash at a nearby store.

People are spending more money on apps and games across the world. In 2025, user spend across iOS and Play Store was over $167 billion for in-app purchases, up 10.6% year-on-year, according to a report from analytics firm Sensor Tower.

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Embattled hedge fund Situational Awareness invests $400M in chip startup Source Foundry

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Situational Awareness may have had to sell off the majority of its public portfolio last month, but the AI-focused hedge fund is still making some big bets.

This week, the fund invested $400 million into Source Foundry, a startup founded by Stanford researchers aiming to make chip manufacturing faster and cheaper, according to The Wall Street Journal. That brings its total investment in Source Foundry to $500 million.

Situational Awareness was founded by Leopold Aschenbrenner, a former OpenAI researcher in his mid-twenties who had no trading experience when he launched the fund in 2024. Early returns were reportedly strong, but the fund faced steep losses in recent months amidst the decline in AI infrastructure stocks.

At the end of July, Situational Awareness sold off the majority of its public portfolio to Ken Griffin’s Citadel, although the fund held on to its Anthropic shares. Its assets under management reportedly fell from $20 billion to $10 billion.

On the bright side, Aschenbrenner didn’t let those setbacks get in the way of his wedding.

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