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Biology Might Not Be Quantum, but Its Math Is Quantumlike

Biology Might Not Be Quantum, but Its Math Is Quantumlike

quantamagazine.org 23.09.2026 16:16 6 views
Scientists have a history of trying — and failing — to link biology and quantum mechanics. The real connection between them may be in the math. The post Biology Might Not Be Quantum, but Its Math Is Quantumlik

Two decades ago, scientists seemed on the verge of understanding biology in a new, quantum way. Life unfolds over an incomprehensible span of scales, from our planet-enveloping biosphere at one end, to individual cell-building biomolecules at the other. Even at its most microscopic, though, biology doesn’t really reach down to the quantum realm, in which particles act like waves, become entangled with one another, and exist in superpositions of multiple states at once.

But scientists in the field of quantum biology are searching for ways that organisms might be able to push quantumness into the space, time, and temperature domains relevant to life, to make use of its strange properties. In photosynthesis, for example, organisms use specialized pigments and proteins to harvest light with nearly perfect quantum efficiency; they convert almost every incoming photon into useful chemical energy. In 2007, new evidence suggested that life might accomplish this feat by taking advantage of a quantum effect called coherence.

The result buoyed the controversial idea that, despite being a warm, wet, and decidedly classical environment, a living cell could maintain — and even exploit — fragile quantum states. Gregory Scholes, a chemist at Princeton University, was initially enthusiastic about the result. He and colleagues followed up with experiments on photosynthesizing proteins and pigments and came away with similar conclusions.

But today, Scholes is skeptical that quantum effects play a role in life. In fact, he’s convinced that the way forward for quantum biology might not be quantum at all. Rather than taking advantage of genuine quantum effects, Scholes proposes, life might be imitating them instead.

In several papers published over the past three years, Scholes and colleagues have shown that complex networks of classical objects can conspire to produce phenomena that mathematically mimic quantum objects. Don’t be fooled: The states that these networks produce are not truly quantum; they’re only “quantumlike.” They arise when many interacting, oscillating parts add up to a collective whole whose behavior obeys the same mathematics that makes predictions about the quantum world. Researchers in the foundations of quantum mechanics have been exploring how to classically re-create certain aspects of the quantum world for decades, said Markus Müller, a physicist at the Institute for Quantum Optics and Quantum Information in Vienna.

What Scholes has done, Müller said, is show how quantumlike behavior can emerge from relatively unremarkable complex networks — of the sort that abound in nature. In a 1929 lecture, the quantum pioneer Niels Bohr made the vague but enticing statement that quantum mechanics, which at the time was just starting to find its mathematical footing, “may perhaps be of decisive importance, particularly in the discussion of the position of living organisms in our picture of the world.” Bohr’s contemporary Pascual Jordan spent several decades writing on Quantenbiologie, or quantum biology, arguing that life has a unique ability to amplify the strange indeterminism of the quantum world to macroscopic scales, and claiming this as the basis of human thought and free will. Haldane, a geneticist and evolutionary biologist, echoed Jordan in a 1934 paper arguing that the ability to scale up quantum indeterminacy was what made life special. (Jordan, who joined the Nazi Party and its paramilitary forces in 1933, damaged the credibility of quantum biology by attempting to link it to Nazism.) These early proponents of quantum biology sought explanations for the puzzling properties of life at the classical scale in the counterintuitive laws of physics at the quantum scale.

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