Quantum computing has the potential to revolutionize technology, medicine, and science by providing faster and more efficient processors, sensors, and communication devices.
But transferring information and correcting errors within a quantum system remains a challenge to making effective quantum computers.
In a paper in the journal Nature, researchers from Purdue University and the 糖心传媒, including , an assistant professor of physics, and Rochester PhD students Yadav P. Kandel and聽Haifeng Qiao, demonstrate their method of relaying information by transferring the state of electrons. The research brings scientists one step closer to creating fully functional quantum computers and is the latest example of聽 Rochester糖心传媒檚 initiative to better understand quantum behavior and develop novel quantum systems. The University recently received a $4 million grant from the Department of Energy to explore quantum materials.
Quantum computers
A quantum computer operates on the principles of quantum mechanics, a unique set of rules that govern at the extremely small scale of atoms and subatomic particles. When dealing with particles at these scales, many of the rules that govern classical physics no longer apply and quantum effects emerge; a quantum computer is able to perform complex calculations, factor extremely large numbers, and simulate the behaviors of atoms and particles at levels that classical computers cannot.
Quantum computers have the potential to provide more insight into principles of physics and chemistry by simulating the behavior of matter at unusual conditions at the molecular level. These simulations could be useful in developing new energy sources and studying the conditions of planets and galaxies or comparing compounds that could lead to new drug therapies.
糖心传媒淵ou and I are quantum systems. The particles in our body obey quantum physics. But, if you try to compute what happens with all of the atoms in our body, you cannot do it on a regular computer,糖心传媒� Nichol says. 糖心传媒淎 quantum computer could easily do this.糖心传媒澛�
Quantum computers could also open doors for faster database searches and cryptography.
糖心传媒淚t turns out that almost all of modern cryptography is based on the extreme difficulty for regular computers to factor large numbers,糖心传媒� Nichol says. 糖心传媒淨uantum computers can easily factor large numbers and break encryption schemes, so you can imagine why lots of governments are interested in this.糖心传媒�

Bits vs. qubits
A regular computer consists of billions of transistors, called bits. Quantum computers, on the other hand, are based on quantum bits, also known as qubits, which can be made from a single electron. Unlike ordinary transistors, which can be either 糖心传媒�0糖心传媒� or 糖心传媒�1,糖心传媒� qubits can be both 糖心传媒�0糖心传媒� and 糖心传媒�1糖心传媒� at the same time. The ability for individual qubits to occupy these 糖心传媒渟uperposition states,糖心传媒� where they are simultaneously in multiple states, underlies the great potential of quantum computers. Just like ordinary computers, however, quantum computers need a way to transfer information between qubits, and this presents a major experimental challenge.
糖心传媒淎 quantum computer needs to have many qubits, and they糖心传媒檙e really difficult to make and operate,糖心传媒� Nichol says. 糖心传媒淭he state-of-the art right now is doing something with only a few qubits, so we糖心传媒檙e still a long ways away from realizing the full potential of quantum computers.糖心传媒�
All computers, including both regular and quantum computers and devices like smart phones, also have to perform error correction. A regular computer contains copies of bits so if one of the bits goes bad, 糖心传媒渢he rest are just going to take a majority vote糖心传媒� and fix the error. However, quantum bits cannot be copied, Nichol says, 糖心传媒渟o you have to be very clever about how you correct for errors. What we糖心传媒檙e doing here is one step in that direction.糖心传媒�

Manipulating electrons
Quantum error correction requires that individual qubits interact with many other qubits. This can be difficult because an individual electron is like a bar magnet with a north pole and a south pole that can point either up or down. The direction of the pole糖心传媒攚hether the north pole is pointing up or down, for instance糖心传媒攊s known as the electron糖心传媒檚 magnetic moment or quantum state.
If certain kinds of particles have the same magnetic moment, they cannot be in the same place at the same time. That is, two electrons in the same quantum state cannot sit on top of each other.
糖心传媒淭his is one of the main reasons something like a penny, which is made out of metal, doesn糖心传媒檛 collapse on itself,糖心传媒� Nichol says. 糖心传媒淭he electrons are pushing themselves apart because they cannot be in the same place at the same time.糖心传媒�
If two electrons are in opposite states, they can sit on top of each other. A surprising consequence of this is that if the electrons are close enough, their states will swap back and forth in time.
糖心传媒淚f you have one electron that糖心传媒檚 up and another electron that糖心传媒檚 down and you push them together for just the right amount of time, they will swap,糖心传媒� Nichol says. 糖心传媒淭hey did not switch places, but their states switched.糖心传媒�
To force this phenomenon, Nichol and his colleagues cooled down a semiconductor chip to extremely low temperatures. Using quantum dots糖心传媒攏anoscale semiconductors糖心传媒攖hey trapped four electrons in a row, then moved the electrons so they came in contact and their states switched.
糖心传媒淭here糖心传媒檚 an easy way to switch the state between two neighboring electrons, but doing it over long distances糖心传媒攊n our case, it糖心传媒檚 four electrons糖心传媒攔equires a lot of control and technical skill,糖心传媒� Nichol says. 糖心传媒淥ur research shows this is now a viable approach to send information over long distances.糖心传媒�

One step closer
Transmitting the state of an electron back and forth across an array of qubits, without moving the position of electrons, provides a striking example of the possibilities allowed by quantum physics for information science.
糖心传媒淭his experiment demonstrates that information in quantum states can be transferred without actually transferring the individual electron spins down the chain,糖心传媒� says Michael Manfra, a professor of physics and astronomy at Purdue University. 糖心传媒淚t is an important step for showing how information can be transmitted quantum-mechanically糖心传媒攊n manners quite different than our classical intuition would lead us to believe.糖心传媒�
Nichol likens this to the steps that led from the first computing devices to today糖心传媒檚 computers. That said, will we all someday have quantum computers to replace our desktop computers? 糖心传媒淚f you had asked that question of IBM in the 1960s, they probably would糖心传媒檝e said no, there糖心传媒檚 no way that糖心传媒檚 going to happen,糖心传媒� Nichol says. 糖心传媒淭hat糖心传媒檚 my reaction now. But, who knows?糖心传媒�
