糖心Vlog

Could an AI ever win a Nobel prize?

Artificial intelligence is already having a huge impact on research, and the technology is advancing so quickly that some suggest it could soon be capable of directing its own research programmes. But will human input ever become truly obsolete, Jack Grove asks several Nobel laureates

Published on
July 23, 2026
Last updated
July 23, 2026
Illustration of a robot at a podium winning a Nobel prize, to illustrate whether AI could ever win a Nobel prize.
Source: Getty Images montage

鈥淚鈥檝e always enthused about artificial intelligence, but I鈥檝e been completely blown away in the past year,鈥 said Michael Levitt, the Stanford University biologist who .

鈥淚t鈥檚 gone from being at the level of a junior research assistant to the level of a PhD student, then a postdoc and now Claude code is equivalent to a colleague,鈥 he continued, referring to the Anthropic technology, the most advanced of which the US government recently imposed export controls on for fear that it might be misused by adversaries 鈥 before weeks later.

At that pace of development, he predicts that 鈥渋n less than 10 years, all experiments will be done automatically. Graduate students, instead of pipetting, will be sitting at computers designing experiments that will then be done by robots.鈥

Another Nobel laureate, Craig Mello, who won the 2006 prize in physiology, predicted that AI might ultimately even run its own entire research programmes, without any need at all for human input 鈥 particularly if the AI were installed in a robot. That could allow it to address the big scientific questions, such as how life emerged on Earth.

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AI has already been involved in Nobel prizewinning discoveries, of course. Google DeepMind鈥檚 Demis Hassabis and John Jumper were jointly awarded the Nobel Prize in Chemistry听in 2024 for using AI to develop the protein structure predictor AlphaFold. But might we see an AI credited one day soon with a Nobel prize of its own? Might the annual Lindau Nobel Laureate Meeting, where Levitt and Mello spoke to 糖心Vlog earlier this month, one day be dominated by intelligent robots, mingling with a dwindling array of ageing humans 鈥 if such physical meetings retained any purpose in a tech-dominated scientific endeavour?

An AI鈥檚 first self-directed Nobel-winning discovery may be closer than many assume given the breakneck pace of technological advancement. That acceleration was described powerfully at Lindau by Omar Yaghi, who shared last year鈥檚 chemistry prize with Richard Robson and Susumu Kitagawa for their materials science research that enables the stitching together of molecules to become sponges for water or carbon capture.

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While it previously took a research team three to 10 years to create a particular crystal capable of absorbing carbon directly from the atmosphere, the assistance of ChatGPT now brought this timeline down to a few weeks, explained Yaghi, who recently moved from Stanford University to Tsinghua University in China, where he .

Recently, he said, 鈥淲e wrote one and a half pages on crystal chemistry and what we were doing and the accuracy checks we needed and fed that into ChatGPT,鈥 he told the auditorium, explaining that 鈥渕ost of what it turned out was obvious鈥ut a few things it said [are things] we would never have thought about. And within three cycles [of experiments] we created something more crystallised than anything that had been reported [previously]. That was progress in two weeks, not 10 years, and it changed our work completely. My entire lab are now using AI robotics to explore how we can use this technology.鈥

Speaking to 糖心Vlog after his keynote, the Jordan-born chemist said before AI, scientists had 鈥渙perated in a world of scarcity, where, if you make a new material and it has a magnificent property, it leads to a much larger field and you get a Nobel prize. But in the future, 鈥淎I is going to be doing all of that for you鈥, generating many more results than humans had been able to generate by themselves. In that sense, 鈥渁sking the right questions is going to be a lot more challenging than finding the answers,鈥 he said.

And the people who win Nobel prizes in the future will be those who succeed in 鈥渃hanging the system鈥 鈥 by which Yaghi meant making a major impact on society. That might require a team of people 鈥渋n the back room deciphering what [a certain] discovery is doing and connecting it with the world鈥, he explained.

鈥淚n my world, that might mean connecting the material to the properties and choosing which material is going to get me from the molecule to society. That鈥檚 not going to be easy. That鈥檚 going to require a science in itself 鈥 the science of choosing the novel element. But it鈥檚 going to mean having a room full of bees working hard to arrive at an answer, even if the people who created that system are those who will ultimately get the credit.鈥

Illustration of a robot picking an apple, with robot bees. To illustrate that AI can take on much of the work.
Source:听
Getty Images montage

Stefan Hell, a German-Romanian physicist who won the Nobel Prize in Chemistry in 2014, also stressed the importance of recognising the significance of a finding.

鈥淢aking a Nobel-worthy discovery is not just making the discovery,鈥 he said. 鈥淭he truly creative scientist has to recognise what is worthwhile and what isn鈥檛, then provide a way of showing how this will change science,鈥 said Hell, who is director of both the Max Planck Institute for Multidisciplinary Sciences in G枚ttingen and the Max Planck Institute for Medical Research in Heidelberg.

鈥淧eople have been very close to Nobel-winning discoveries but didn鈥檛 recognise the importance of their findings,鈥 he said, likening the situation to the Vikings鈥 lack of credit for discovering America despite the fact that Leif Erikson reputedly reached the continent nearly 500 years before Christopher Columbus did.

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鈥淭he Vikings came back and reported what they鈥檇 found but it did not make any difference 鈥 the world didn鈥檛 change. When the Spanish went west, thinking they were heading for India, then everything changed. This is what discoveries do 鈥 they change the world,鈥 he said.

Without human guidance, then, an AI might find itself a modern Leif Erikson when it comes to the Nobel committee鈥檚 deliberations. 鈥淎I is coming up with all sorts of answers, but it won鈥檛 find a cure for cancer,鈥 Hell said. 鈥淪omeone will need to truly understand when AI is right, work in the lab to confirm that finding and make sure the world knows its importance.鈥

Walter Gilbert, the US molecular biology pioneer who won the Nobel Prize in Chemistry in 1980, is even more sceptical about whether AI could win such an accolade without major human help 鈥 not least because 鈥渢hese [AI] models are scraping scientific papers and people accept the results are absolute truth, but some of the results are made up or have errors鈥.

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Indeed, the Harvard University scientist worries that over-reliance on generative AI could actually hold back discovery if researchers, guided by LLMs, converge on the same reductive questions.

鈥淏ig discoveries happen when your experiment finds something you did not expect, something that happened beyond your hypothesis. Deep understanding of a subject should be the focus, not waiting for Claude to write a program,鈥 said Gilbert.

Man looking at framed pictures of robots. To illustrate AI winning awards.
Source:听
Moor Studio/Getty Images

That view was reflected by several young scientists at the Lindau meeting, which brings together prizewinners and early-career researchers.

鈥淵ou can tell from the first line of a journal [article] which LLM model has written it,鈥 one junior delegate from Ukraine noted wryly in an informal group chat. And, echoing Gilbert鈥檚 criticism, she added that some early-career researchers felt under pressure to generate hypotheses using AI and test them, rather than pursue riskier but potentially more productive lines of inquiry. With LLMs using the same data and algorithms, teams often ended up tackling similar questions in similar ways.

Yet scientific fashions have always posed a risk of duplicated effort. And while AI could exacerbate this trend, Yaghi insisted that the 鈥渘eed for creativity [in the lab] won鈥檛 change. Complacent scientists will continue to be complacent, and the creative scientists will continue to be creative because what constitutes science and creativity within it doesn鈥檛 change. You will still need to be rigorous, focus on the facts, find corroborating evidence, and [generate] new ideas that depart from the norm. Those who understand these things are the people who are going to get ahead.鈥

In that sense, for all his optimism about what AI can do, Yaghi doesn鈥檛 think the technology will surpass human 鈥渃reativity and judgement鈥 any time soon.

鈥淲e will always have a way of being incredibly creative because we can operate in chaos much more flexibly than a computer,鈥 he said. Hence, he does not foresee AI becoming more significant to Nobel prizewinning research than the humans involved any time soon: 鈥淭hat won鈥檛 happen in my lifetime.鈥

Nor will AI significantly speed up the time it takes for a discovery to win a Nobel, Yaghi believes 鈥 notwithstanding the mere two years it took DeepMind to go from AlphaFold launch to prize receipt.

鈥淵ou get the Nobel prize because you open the door on something significant that has the potential to benefit humankind,鈥 he said. But, typically, it 鈥渘aturally takes time鈥 to 鈥渄evelop the basis of that invention to the point where the utility to society is proven. Even if there鈥檚 an outstanding question out there that people have been asking for 30 years and now there is a newfound discovery or technique that immediately answers all those extremely difficult questions, you need to know this is not just a flash in the pan.鈥

Whatever AI鈥檚 Nobel prizewinning potential, Yaghi and other laureates are in no doubt that the technology will play a fundamental role in future breakthroughs. It is already 鈥渞evolutionising the world and is making scientists much more productive鈥, said Mello. 鈥淚 love it and want AI implanted in my brain,鈥 he added, joking that this would remove the need for his frequent conversations with AI chatbots on his phone.

For his part, Stanford鈥檚 Levitt acknowledged that by reducing principal investigators鈥 need to recruit as many PhD students and postdocs as they currently do, AI could block the development of the next generation of PIs 鈥 and thereby hold back future scientific development that required human input.

鈥淚f an old guy with AI can do the same work as a research team, there is a tension here [for science],鈥 he conceded.

But he was also very clear that there was no going back.

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鈥淚f someone was selling a drug that made you 10 times more efficient and 30 per cent smarter, you would take it,鈥 he said. 鈥淎nd that鈥檚 what AI does.鈥澨

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Reader's comments (4)

Is this fiction? Who creates AI BOTs and engines? Humans. Who programs them? Humans. Who interprets their often contradictory or unclear findings? Humans..... What, in fact, is the point here?
鈥淚f an old guy with AI can do the same work as a research team, there is a tension here [for science],鈥 he conceded. Hope for you yet!!
Having cured cancer and Alzheimer s, the AI will start designing its own experiments. Can we cure human? How do we rid the Earth's ecosystem of this one damaging species ? OK now we have built the Terminator, where did Sarah Connor live ?
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Never mind Sarah Conor! Start with Graff!!

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