Department of Physics, CUHK 香港中文大學物理系

Department of Physics, CUHK 香港中文大學物理系 This page will be updated with the up-to-date news of the Department. Please stay tuned!

We are thrilled to celebrate the outstanding achievement of our undergraduate team members, Miss HE Qirui, Miss LI Yiwei...
22/07/2026

We are thrilled to celebrate the outstanding achievement of our undergraduate team members, Miss HE Qirui, Miss LI Yiwei, Mr. HUA Yongxin, and Mr. LI Sze Tung, who won the PLANCKS Hong Kong Preliminary and earned the honour of representing Hong Kong at the PLANCKS 2026 Final in Eindhoven, the Netherlands! 🎉

With the generous support of the Physics Department, the team competed against 54 elite teams from around the world. After tackling a series of rigorous and intellectually demanding physics challenges, they achieved an impressive 17th place globally, emerging as the highest-ranked team from Hong Kong. 🌟

We are incredibly proud of their outstanding accomplishment and their efforts in showcasing Hong Kong’s talent and excellence on the international stage! 👏🔬🌍

What an inspiring finish to this year's Summer Undergraduate Research Internship Program (SURIP)! 🎉 The Poster Presentat...
20/07/2026

What an inspiring finish to this year's Summer Undergraduate Research Internship Program (SURIP)! 🎉 The Poster Presentation, held on 17 July, showcased innovative research, healthy competition, and plenty of joyful moments. We are delighted to announce this year's five First Prize winners. Congratulations to all participants for your outstanding work, dedication, and enthusiasm! 👏
Each First Prize winner will receive a certificate and a book coupon in recognition of their excellent performance!


27/05/2026
Exciting news! We are thrilled to announce that our undergraduate student, LAW Chun Man, represented us in the Grand Fin...
14/05/2026

Exciting news! We are thrilled to announce that our undergraduate student, LAW Chun Man, represented us in the Grand Final of the CUHK Capstone Project Presentation Competition 2026. He took home two honors: the Third Runner-up Award and the Audience Choice Award!

08/01/2026

2025 marks the centenary of the birth of quantum mechanics. With the establishment of the State Key Laboratory of Quantum Information Technologies and Materials, CUHK aspires to bring even more earth-shattering breakthroughs to the next century of quantum science.

05/11/2025

Unlock Your Future: Must-know Tips from our UG Admission Talk

📣📣📣 Prof. Hua-Bai Li's team discovers self-gravity slows turbulence decay in stellar nurseries 📣📣📣A breakthrough study l...
22/08/2025

📣📣📣 Prof. Hua-Bai Li's team discovers self-gravity slows turbulence decay in stellar nurseries 📣📣📣

A breakthrough study led by researchers at The Chinese University of Hong Kong reveals how self-gravity sustains turbulence within dense star-forming clouds. Published in The Astrophysical Journal, the work resolves a decades-old paradox: why molecular cloud turbulence persists despite expectations of rapid decay.

Using high-resolution magnetohydrodynamic (MHD) simulations, Mr. Shibo Yuan and Prof. Hua-bai Li demonstrate that while turbulence decays rapidly in low-density regions (rate: −0.11 km/s/Myr), it remains nearly constant in dense cores (>1,800 H₂/cm³) when self-gravity is present (rate: −0.03 km/s/Myr). This density-dependent decay—absent in non-self-gravitating models—stems from gravitational potential energy released during core formation, countering turbulence dissipation.

Crucially, the sustained turbulence in high-density cores occurs without collapse, challenging prior assumptions. Because, besides collapsing, turbulence-concentrated volumes also release gravitational potential energy. The findings align with recent observations of rising Alfvén Mach numbers in dense regions. Self-gravity secretly fuels turbulence right where stars are born.

Data Availability: CUHK Repository DOI: 10.48668/KDQO4F

Full Paper: https://iopscience.iop.org/article/10.3847/1538-4357/ade5b6

Photo caption: The waterfall plot depicts the decay of turbulence with self-gravity (left panel) and without self-gravity (right panel). Each line perpendicular to the time axis consists of the binned σv-n pairs for a single time snapshot. In the high-density regions, σv exhibits significantly different fluctuations between the two cases; whereas, in low-density regions it decays steadily and similarly.

📣📣📣 Prof. Ming Chung Chu's team used a novel method to measure the expansion rate of the Universe 📣📣📣One of the greatest...
25/01/2025

📣📣📣 Prof. Ming Chung Chu's team used a novel method to measure the expansion rate of the Universe 📣📣📣

One of the greatest scientific discoveries is the expansion of the universe. This expansion drives the universe's evolution, transforming it from the hot, and uniform state to the cold and clustered phase we observe today. It is a cornerstone of modern cosmology and makes the Big Bang theory a household name. The current expansion rate, known as the Hubble constant, named after Edwin Hubble, who discovered it in 1929 by observing the apparent motions of nearby galaxies, is of fundamental importance in modern cosmology.

Recently, a significant discrepancy has emerged in the measured values of the Hubble constant. These measurements can be divided into two categories: local measurements (Figure 1) based on light from relatively nearby objects, such as supernovae, and global measurements derived from observation of the cosmic microwave background assuming the standard cosmological model. While local measurements report values around 73 ± 1 km/s/Mpc, meaning that two galaxies separated by 1 Mpc (about 3.3 million light-years) appear to recede from each other at a rate of 73 km per second, global measurements prefer 67 ± 0.5 km/s/Mpc.

The discrepancy referred to as the Hubble Tension has generated considerable excitement and attention because it may indicate the existence of new physics beyond the standard cosmological model and the Standard Model of Particle Physics.

A recent study conducted by a team of researchers from the Department of Physics ( ), Faculty of Science ( ) at , led by Professor Ming-Chung Chu and PhD student Wangzheng Zhang, introduces a new method for measuring the Hubble constant. The team also includes Dr. Shek Yeung, a CUHK PhD graduate from 2022, along with collaborators Dr. Shihong Liao, who received his PhD from CUHK in 2015 and is affiliated with the National Astronomical Observatories of China, and Dr. Hui-Jie Hu from the University of the Chinese Academy of Sciences. Their findings, published in The Astrophysical Journal Letters, detail a novel approach that analyzes the mutual motions of galaxy pairs to measure the Hubble constant.

Uncovering the hidden dynamics of galaxy pairs:

Instead of measuring the Hubble constant by observing the apparent motion of individual galaxies, as Edwin Hubble did, the researchers focused on the relative motions of pairs of galaxies (Figure 2: https://www.sdss3.org/science/gallery_sdss_pie2.php). These motions are affected by both their mutual gravitational interactions and the overall expansion of the universe. The team utilized a statistical measure known as pairwise velocity, which describes the relative motion between galaxy pairs and provides valuable insights into the structure and evolution of the universe. By examining this motion, the researchers were able to infer key details about the large-scale dynamics of the universe, including the Hubble constant.

The team used advanced computer simulations to model pairwise velocities across different expansion scenarios. They compared the results of these simulations with observational data collected from galaxy surveys. Their findings indicated that pairwise velocity could be used as an independent and accurate measurement of the Hubble constant, offering a new perspective on the Hubble Tension.

A New, More Reliable Approach to Measuring the Hubble Constant:

This new method focuses on the relative velocity between galaxies within pairs, effectively minimizing common biases, including those introduced by our motion relative to the Hubble expansion. As a result, this approach is more reliable and complements existing methods for measuring the Hubble constant.

"We are excited not only because our method offers a new approach to studying the universe’s expansion, but also because it creates new opportunities for testing cosmological models and potentially measuring the mass of cosmological neutrinos," said Wangzheng Zhang. "The dynamics of galaxy pairs provide fresh insights into how the universe evolves. This understanding will be invaluable in tackling some of the most profound puzzles in cosmology," added Professor Chu.

Credit: NASA, ESA and A. Feild (STScI) NASA https://science.nasa.gov/centers-and-facilities/goddard/mystery-of-the-universes-expansion-rate-widens-with-new-hubble-data/

07/11/2024

The Faculty of Science at The Chinese University of Hong Kong ( ) is excited to announce that 𝟓𝟕 𝐨𝐟 𝐢𝐭𝐬 𝐬𝐜𝐡𝐨𝐥𝐚𝐫𝐬 𝐡𝐚𝐯𝐞 𝐛𝐞𝐞𝐧 𝐥𝐢𝐬𝐭𝐞𝐝 𝐚𝐦𝐨𝐧𝐠 𝐭𝐡𝐞 𝟐𝟎𝟐𝟒 “𝐔𝐩𝐝𝐚𝐭𝐞𝐝 𝐬𝐜𝐢𝐞𝐧𝐜𝐞-𝐰𝐢𝐝𝐞 𝐚𝐮𝐭𝐡𝐨𝐫 𝐝𝐚𝐭𝐚𝐛𝐚𝐬𝐞𝐬 𝐨𝐟 𝐬𝐭𝐚𝐧𝐝𝐚𝐫𝐝𝐢𝐬𝐞𝐝 𝐜𝐢𝐭𝐚𝐭𝐢𝐨𝐧 𝐢𝐧𝐝𝐢𝐜𝐚𝐭𝐨𝐫𝐬”, 𝐰𝐢𝐝𝐞𝐥𝐲 𝐤𝐧𝐨𝐰𝐧 𝐚𝐬 “𝐖𝐨𝐫𝐥𝐝’𝐬 𝐓𝐨𝐩 𝟐% 𝐒𝐜𝐢𝐞𝐧𝐭𝐢𝐬𝐭𝐬” 𝐩𝐮𝐛𝐥𝐢𝐬𝐡𝐞𝐝 𝐛𝐲 𝐒𝐭𝐚𝐧𝐟𝐨𝐫𝐝 𝐔𝐧𝐢𝐯𝐞𝐫𝐬𝐢𝐭𝐲. The data includes both career-long and single-year citation impact.

The 57 scholars, of which 39 are on the career-long list, and 43 are on the single-year list, covering fields such as chemistry (14 scholars), earth and environmental sciences (3 scholars), life sciences (19 scholars), mathematics (8 scholars) and physics (13 scholars). It is worth noting that 25 scholars are named on both career-long and single-year impact lists.

Three of the CUHK Science scholars were among the Top 100 Most Cited in their sub-fields of research based on their career-long citation impact. They are Prof. SONG Chunshan (Dean of Science and Wei Lun Professor of Chemistry), 19th in the sub-field of “Energy”; Prof. WEI Juncheng (Global STEM Professor and Choh-Ming Li Professor of Mathematics), 72nd in the sub-field of “General Mathematics”; and Prof. MAK Chung Wai Thomas (Emeritus Professor of Chemistry and Member of Chinese Academy of Sciences), 80th in the sub-field of “Inorganic & Nuclear Chemistry”.

The Top 2% Scientists database was prepared by a team of experts led by Prof. John IOANNIDIS of Stanford University. 100,000 top scientists from around the world are classified into 22 scientific fields and 174 sub-fields according to the standard Science-Metrix classification. Career-long data are updated to end-of-2023 and single recent year data pertain to citations received during calendar year 2023. According to the database, 311 scholars from The Chinese University of Hong Kong are on the list.

Congratulations to all of our Faculty members who are among 2024 World’s Top 2% Scientists!

由美國史丹福大學編製的2024「科學界作者標準化引文指標數據庫」出爐,泛稱「全球前2%頂尖科學家榜單(World’s Top 2% Scientists)」,本年共有57名香港中文大學理學院( #中大理學院) 學者入選,當中3位在其學術領域終身科學影響力排名中名列全球首100位。

榜單分為「 #終身科學影響力排行榜」 (career-long impact)和「 #年度科學影響力排行榜」(single-year impact)。39位理學院學者躋身「終身科學影響力排行」,另有46人於「年度科學影響力排行榜」榜上有名,涵蓋化學(14人)、地球和環境科學(3人)、生命科學(19人)、數學(8人)、物理學(13人)以及等領域,其中共25名位學者同時榮膺年度及終身科學影響力首 2% 頂尖科學家。

躋身終身科學影響力全球首100位的3位中大中大理學院學者分別是:理學院院長暨偉倫化學教授宋春山教授(「能源」領域位列19位)、數學系傑出創科學人暨卓敏數學教授魏軍城教授(「通用數學」領域位列72位)以及中國科學院院士暨化學系榮休教授麥松威教授(「無機與核化學」領域位列80位)。

榜單由史丹福大學John Ioannidis教授領導的研究團隊,根據截至2023年底科學家於全年及整個職業生涯學術的各項標準化引用指標進行排名,列出全球首 10 萬位頂尖科學家,涵蓋 22 個學術領域和 174 個細項分類。香港中文大學共有311位學者上榜。

恭賀眾多港中大學者榮登「全球前2%頂尖科學家」!

CUHK Science Scholars Ranked | 中大理學院學者榜單:https://tinyurl.com/yc6pcrsj
Full list | 完整名單:https://bit.ly/406pxNB

#香港中文大學 #頂尖科學家榜單 #中大科研 #中大化學 #中大物理 #中大生命科學 #中大數學 #中大地球與環境科學

📣📣 Prof. Dajun Wang elected Fellow of American Physical Society 📣📣Prof. Wang Dajun from the Department of Physics has be...
25/10/2024

📣📣 Prof. Dajun Wang elected Fellow of American Physical Society 📣📣

Prof. Wang Dajun from the Department of Physics has been elected as a 2024 American Physical Society (APS) Fellow. APS is one of the most prestigious professional societies for physicists in the world. The APS Fellowship, established in 1921, recognizes members for their outstanding contributions to the advancement of physics through original research.

The APS Division of Atomic, Molecular, and Optical Physics (DAMOP) honors Prof. Wang with a citation "For foundational work on polar molecules, BEC mixtures, quantum droplets, and BEC spherical shells".

Prof. Wang's experimental group at the Chinese University of Hong Kong (CUHK) has been working on ultracold quantum gases of atoms and polar molecules since 2010. Over the past decade, ultracold molecules have emerged as one of the major frontiers in AMO and quantum physics. The group's work has significantly contributed to this advancement, playing an important role in its substantial progress.

Prof. Wang's research website: https://www.phy.cuhk.edu.hk/~djwang/index.html

香港中文大學物理系的王大軍教授當選為2024年美國物理學會(APS)會士。APS是世界上最具聲望的物理學專業學會之一,其會士制度始於1921年,旨在表彰會員通過原創研究對物理學做出的傑出貢獻。

APS原子、分子和光物理分會(DAMOP)給出王教授的入選貢獻為:“在極性分子、BEC混合物、量子液滴和BEC球殼方面的基礎性工作。”

自2010年以來,王教授在香港中文大學的實驗小組一直致力於研究超冷原子和超冷極性分子的量子氣體。在過去的十年中,超冷分子已逐漸成為原子、分子和光物理(AMO)及量子物理學的主要前沿領域之一。該小組的工作在推動這一領域的發展中發揮了重要作用。

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