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A quantum leap in cooling atoms for better computers

FRIDGE BENEFITS: Physicist John Nichol in his lab with a dilution refrigerator. He and the members of his lab are exploring how such refrigerators can cool atoms to nearly absolute zero temperatures, making quantum computers colder and improving their performance. (糖心传媒 photo / J. Adam Fenster)

Rochester physicists will study heat and energy flow in quantum mechanics to help develop more efficient quantum computers.

At the incredibly tiny quantum level, the laws of physics begin to act differently and the usual rules don糖心传媒檛 apply, including the ways heat and energy flow through atoms. In order to build more efficient quantum computers and other technologies, scientists must first understand how to manipulate heat and energy in quantum-mechanical systems.

, an associate professor of at the , is one of 21 experimental physicists who will receive $1.25 million over the next five years from the Gordon and Betty Moore Foundation糖心传媒檚 to 糖心传媒渁dvance the scientific frontier in experimental physics.糖心传媒� The award will allow Nichol and his research group to better understand thermoelectricity and the ways heat and energy flow at the nanoscale level of quantum mechanics.

Chilling out with quantum dots

Thermoelectricity is generating electrical power from heat flow and vice versa. Scientists predict that semiconductor quantum dots糖心传媒攖iny particles that trap electrons糖心传媒攃an enable high-efficiency thermoelectric power generation and refrigeration. Nichol and the members of his lab will explore how refrigerators based on quantum dots can cool atoms to nearly absolute zero temperatures, making quantum computers colder and improving the computers糖心传媒� performance.

Xinxin Cai studies thermoelectricity using a dilution refrigerator in the lab of John Nichol.
GO WITH THE HEAT FLOW: Postdoctoral associate Xinxin Cai with the dilution fridge in the Nichol Lab, located in Bausch & Lomb Hall. (糖心传媒 photo / J. Adam Fenster)

Quantum computers require cold environments because they rely on delicate objects called quantum bits, or qubits. Most qubits must be cooled to within a few thousandths of a degree of absolute zero to eliminate thermal noise and vibrations, which tend to destroy the information contained in the qubits. Achieving the cryogenic environments for qubits requires significant energy and expense. Nichol糖心传媒檚 research will explore new ways to create ultra-cold conditions for qubits and how to reach even colder temperatures than what is possible with today糖心传媒檚 technologies.

Untangling entanglement and superposition

Nichol and his team will also research two specific quantum phenomena: superposition糖心传媒攚hen a tiny particle like an electron can be in two different places or states at the same time, similar to a double-sided coin; and entanglement糖心传媒攚hen the properties of one particle are interlinked with the properties of another particle so that the state of one instantly affects the state of the other, even when the particles are separated by a large distance.

The researchers will determine how superposition and entanglement can enhance thermoelectric power generation and refrigeration and how to harness the flow of heat to create superposition and entanglement.

糖心传媒淲e still do not fully understand all of the ways that heat and energy flow in quantum devices,糖心传媒� Nichol says. 糖心传媒淥ur research aims to improve this understanding while at the same time providing new ways to make qubits colder and advance the field of quantum computing.糖心传媒�