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![]() by Staff Writers Karlsruhe, Germany (SPX) Mar 13, 2022
Quantum information will revolutionize not only research and industry, but also our everyday life. Among others, it promises enormous progress in the simulation of materials and processes, which will push the development of new medical substances, the improvement of batteries, transport planning, and secure information and communication. A quantum bit (qubit) can assume many different states between 0 and 1 at the same time. This so-called quantum superposition enables massively parallel processing of data. As a result, computing capacity of quantum computers will increase exponentially compared to digital computers. To carry out computing operations, however, the superposition states of a qubit have to persist for a certain time. In quantum research, this is referred to as coherence lifetime. Nuclear spins, i.e. angular momentums of atomic nuclei, in molecules enable superposition states with long coherence lifetimes, because nuclear spins are shielded well from the environment and protect qubits against external impacts.
Effective Light/Nuclear Spin Interface The team of Professors Mario Ruben and David Hunger from the IQMT and Dr. Philippe Goldner from the Ecole nationale superieure de Chimie de Paris (Chimie ParisTech - PSL University; Centre national de la recherche scientifique; CNRS) present this innovative material in Nature. The molecule is structured such that it exhibits luminescence in case of laser excitation. This means that it emits photons carrying the nuclear spin information. By means of specific laser experiments, an effective light/nuclear spin interface can be produced. The work covers the addressing of nuclear spin levels with the help of photons, coherent storage of photons, and the execution of first quantum operations.
High Density of Qubits Another aspect relevant to practical applications is the addressability of individual qubits. Optical addressing increases the readout speed and interfering electrical feeds can be prevented. Frequency separation allows to individually address a number of molecules. Compared to previous projects, the work reported here reaches an about thousand times better optical coherence in a molecular material. In this way, nuclear spin states can be manipulated optically in a specific way.
A Step towards the Quantum Internet
Research Report: "Ultra-narrow optical linewidths in rare-earth molecular crystals"
![]() ![]() Weird world of high-pressure chemistry made simple by electronegativity scale Moscow, Russia (SPX) Mar 07, 2022 A Skoltech professor and his Chinese colleagues have revised a key chemical concept, electronegativity, and determined this characteristic for all elements under varying pressures. The revamped notion of electronegativity provides a unified theoretical framework for understanding the numerous anomalies of high-pressure chemistry. The study came out in the prestigious journal Proceedings of the National Academy of Sciences of the USA. Electronegativity and the closely related notion of chemical har ... read more
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