Chinese scientists set new quantum entanglement record

Researchers at the University of Science and Technology of China have deployed a multi-mode quantum relay network that achieves matter-matter entanglement over 14.5 kilometers of fiber.

The system, called Xinghan-2, was detailed in the journal Nature Photonics on May 7. It solves a key bottleneck in quantum communication by delivering both high transmission rates and high fidelity simultaneously.

The research team, led by Li Chuanfeng and Zhou Zongquan, developed a time-measurement protocol paired with multi-mode quantum memory. Photons no longer need to arrive at intermediate stations at the same time.

Reviewers noted that the entanglement distribution rate exceeds previous metropolitan relays by more than 100 times. The network maintained 78.6 percent fidelity across the 14.5-kilometer span while using existing fiber infrastructure.

Li Chuanfeng said the work marks the longest reported distance for matter-matter entanglement and moves the technology from lab proof-of-concept to urban network use.

Artigos relacionados

An international team of researchers has achieved a milestone in quantum communication by teleporting the polarization state of a single photon between two separate quantum dots over a 270-meter open-air link. The experiment, conducted at Sapienza University of Rome, demonstrates the potential for quantum relays in future quantum networks. The findings were published in Nature Communications.

Reportado por IA

Qunnect, a Brooklyn-based company, has created technology to share quantum-entangled photons for secure communication networks. The firm recently achieved entanglement swapping over 17.6 kilometers of fiber-optic cables between Brooklyn and Manhattan. This advancement supports the development of an unhackable quantum internet.

Physicists at the University of Vienna have conducted an experiment demonstrating a superposition of different temporal orders in quantum events, using entangled photons and a Bell inequality equivalent. The results deviate significantly from classical expectations, suggesting indefinite causal order is a fundamental quantum feature. However, several experimental loopholes remain open.

Reportado por IA

Researchers at East China Normal University have developed a new imaging technique that captures ultrafast events in trillionths of a second, revealing both brightness and structural changes in a single shot. The method, called compressed spectral-temporal coherent modulation femtosecond imaging (CST-CMFI), tracks phenomena like plasma formation and electron movement. Yunhua Yao, the team leader, described it as a major advance for physics, chemistry, and materials science.

China's Zhengzhou core node has doubled its chips to 60,000 from 30,000 since early February trials, becoming the nation's most powerful scientific intelligent computing infrastructure, CCTV reported.

terça-feira, 05 de maio de 2026, 15:03h

Quantum computers simulate record-large molecule with supercomputer aid

quinta-feira, 30 de abril de 2026, 11:03h

Researchers propose quantum method for messaging into past

quarta-feira, 29 de abril de 2026, 08:00h

Physicists discover transdimensional quantum state in carbon material

quarta-feira, 25 de março de 2026, 02:37h

China Mobile opens new data centre in Hong Kong

sábado, 21 de março de 2026, 16:53h

Chinese optical clock reaches 10^{-19} precision level

sábado, 21 de março de 2026, 02:40h

Scientists uncover 48-dimensional topologies in quantum light

quarta-feira, 11 de março de 2026, 16:06h

China's super microscope achieves neutron beam output milestone

sexta-feira, 20 de fevereiro de 2026, 04:08h

Chinese scientists put quantum chaos in slow motion

segunda-feira, 16 de fevereiro de 2026, 15:09h

Quantum experiment reverses heat flow in qubits

terça-feira, 10 de fevereiro de 2026, 19:17h

Physicists identify atomic structure's role in quantum transition speeds

Este site usa cookies

Usamos cookies para análise para melhorar nosso site. Leia nossa política de privacidade para mais informações.
Recusar