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University of Copenhagen - Niels Bohr Institute


The sound of quantum vacuum

The study reveals strong correlations between laser-induced light fluctuations and mechanical motion, showcasing the strange laws of quantum mechanics. By using a phononic crystal to confine vibrations, the researchers achieved ultra-precision measurements, overcoming fundamental quantum limits.

SourceUniversity of Copenhagen - Niels Bohr Institute·JournalProceedings of the National Academy of Sciences·DateDec 22, 2016

Diversity of nature formulated

A team of biophysicists from the Niels Bohr Institute has formulated a mathematical model called Lotka-Volterra to assess an ecosystem's balance and predict the impact of invasive species. This formula calculates mutual influence, crucial for sustainable coexistence, and can also forecast extinction due to native animal removal.

SourceUniversity of Copenhagen - Niels Bohr Institute·JournalPLOS Computational Biology·DateFeb 1, 2016

Quantum networks: Back and forth are not equal distances!

Scientists have developed a new type of photonic channel that allows them to control the direction of photon emission, enabling the creation of complex quantum circuits. This breakthrough discovery has significant implications for building large-scale quantum computers and could lead to major advancements in chemistry and materials tec...

SourceUniversity of Copenhagen - Niels Bohr Institute·JournalNature Nanotechnology·DateJul 27, 2015

New superconducting hybrid crystals developed at University of Copenhagen

Researchers have developed a new type of nanowire crystal that combines semiconducting and metallic materials, exhibiting superconducting properties at low temperatures. The breakthrough could play a central role in the development of future electronics, including chips with billions of identical semiconductor-metal nanowire hybrids.