
Academic Journal
Q1Annual Review of Condensed Matter Physics
About Annual Review of Condensed Matter Physics
Annual Review of Condensed Matter Physics is a scholarly journal published by Annual Reviews Inc.. SCImago 2025 places it in Q1 with an SJR of 10.044 and an H-index of 102.
Its listed coverage is 2010-2025 and its research categories include Condensed Matter Physics (Q1); Materials Science (miscellaneous) (Q1). The 2025 dataset reports 20 documents and 1431 citations across the latest three-year reporting window.
The Annual Review of Condensed Matter Physics (AR-CMP) is a premier scientific journal that serves as a vital resource for researchers, physicists, and academicians involved in the field of condensed matter physics. Published annually by Annual Reviews, this peer-reviewed journal provides comprehensive and authoritative reviews on the most significant developments, emerging trends, and groundbreaking research in condensed matter physics.
What Is Condensed Matter Physics?
Condensed matter physics is one of the largest and most dynamic branches of physics. It focuses on understanding the physical properties of matter in solid and liquid states. This field explores phenomena such as superconductivity, magnetism, crystallography, quantum mechanics, and materials science, with real-world applications in technology, electronics, energy, and nanotechnology.
Purpose and Scope of the Journal
The Annual Review of Condensed Matter Physics was established in 2010 and quickly gained recognition for its depth and quality. Its primary goal is to provide high-quality reviews that summarize, synthesize, and critically assess recent progress in various subfields of condensed matter physics.
The journal covers a wide array of topics, including but not limited to:
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Quantum materials
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Topological insulators
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High-temperature superconductivity
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Nanostructured materials
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Strongly correlated systems
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Soft matter physics
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Theoretical and computational methods
Why It Matters for the Scientific Community
The AR-CMP is more than just a collection of articles—it's a critical academic tool that helps physicists stay updated with the fast-evolving landscape of condensed matter research. By offering in-depth reviews written by leading experts, it ensures that both foundational knowledge and novel discoveries are easily accessible to researchers worldwide.
Each annual volume curates articles through a meticulous editorial process, ensuring relevance, accuracy, and clarity. This is especially beneficial for graduate students and early-career scientists who need a comprehensive understanding of complex topics.
Indexing and Impact
The Annual Review of Condensed Matter Physics is indexed in major scientific databases such as Scopus, Web of Science, and INSPEC, making it easily discoverable by researchers and institutions globally. It consistently ranks high in terms of impact factor, reflecting the quality and citation value of its published reviews.
SEO Benefits for Academic and Research Platforms
If you're managing an academic or research-focused website, linking to or referencing the Annual Review of Condensed Matter Physics can significantly boost your site’s authority and visibility. With high-ranking keywords like "condensed matter physics review," "latest trends in physics research," and "top physics journals," your content can attract a more engaged and scholarly audience.
Journal Metrics
Metrics can change by reporting year. Verify time-sensitive values with the publisher or indexing service.
Aims & Scope
The Annual Review of Condensed Matter Physics is a leading scientific journal that serves as a comprehensive resource for researchers, educators, and students interested in the rapidly evolving field of condensed matter physics. Each volume presents authoritative, in-depth reviews that summarize key developments, current trends, and future directions across diverse areas of the discipline. With an emphasis on clarity and accessibility, this journal is essential for staying updated on the latest breakthroughs in theoretical and experimental condensed matter research.
What is Condensed Matter Physics?
Condensed matter physics is a branch of physics that investigates the macroscopic and microscopic physical properties of matter, especially in solid and liquid states. This field includes the study of crystals, semiconductors, superconductors, magnetic materials, nanostructures, and complex fluids. It has profound implications for technology, including advancements in quantum computing, material science, electronics, and energy storage.
Scope of the Journal
The Annual Review of Condensed Matter Physics covers a wide range of topics such as:
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Quantum materials and topological insulators
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Superconductivity and magnetism
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Nanostructured systems and soft condensed matter
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Strongly correlated electron systems
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Nonequilibrium phenomena and quantum dynamics
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Computational and theoretical methods
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Novel experimental techniques
The journal prioritizes interdisciplinary research, integrating insights from physics, materials science, chemistry, and engineering to provide a holistic understanding of complex systems.
Key Features and Benefits
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Authoritative Reviews: Written by leading experts, each article distills vast amounts of research into accessible, well-structured summaries.
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Emerging Topics: The journal highlights innovative themes and novel theoretical models, guiding researchers to new avenues of exploration.
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Peer-Reviewed Content: All submissions are rigorously peer-reviewed, ensuring high academic and scientific standards.
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Global Reach: The Annual Review of Condensed Matter Physics is widely cited and accessed by institutions worldwide, enhancing its visibility and influence.
Why It Matters
As condensed matter physics continues to be one of the most active and impactful areas in science, staying updated through high-quality sources is essential. This journal not only reflects the state-of-the-art in fundamental research but also showcases the practical applications that drive real-world innovation—from advanced materials to quantum technologies.
Recent Highlights
Recent volumes have featured groundbreaking reviews on topics such as moiré superlattices, quantum spin liquids, ultrafast spectroscopy techniques, and machine learning applications in material discovery. These articles are not only rich in content but also highlight the interdisciplinary synergy that defines modern condensed matter research.
Recent Research Articles
Latest publications matched automatically by ISSN.
Quantum Critical Eliashberg Theory
Ilya Esterlis, Jörg Schmalian
2026-03-13 · DOI: 10.1146/annurev-conmatphys-032822-042856Optimal Control in Soft and Active Matter
José Alvarado, Erin G. Teich, David A. Sivak, John Bechhoefer et al.
2026-03-13 · DOI: 10.1146/annurev-conmatphys-031324-031350Full-Integer Topological Defects in Polar Active Matter: From Collective Migration to Tissue Patterning
Luiza Angheluta, Anna Lång, Emma Lång, Stig Ove Bøe et al.
2026-03-13 · DOI: 10.1146/annurev-conmatphys-031620-105420The Physics of Soft Adhesion
Katharine E. Jensen, Chelsea S. Davis
2026-03-13 · DOI: 10.1146/annurev-conmatphys-031424-010035Phase Separation in Mixtures of Nematic and Isotropic Fluids
Margarida M. Telo da Gama, Rodrigo C.V. Coelho
2026-03-13 · DOI: 10.1146/annurev-conmatphys-031324-024345A Fuzzy Sphere Journey in Critical Phenomena
Yin-Chen He, W. Zhu
2026-03-13 · DOI: 10.1146/annurev-conmatphys-031424-020256Fractional Quantum Anomalous Hall Effect
Ting Cao, Liang Fu, Long Ju, Di Xiao et al.
2026-03-13 · DOI: 10.1146/annurev-conmatphys-031524-071133Shear Mechanics of Articular Cartilage and Cartilage-Inspired Materials
Jonathan Michel, Itai Cohen, Lawrence J. Bonassar, Moumita Das et al.
2026-03-13 · DOI: 10.1146/annurev-conmatphys-032922-100843Deformed States in Paraelectric and Ferroelectric Nematic Liquid Crystals
Oleg D. Lavrentovich
2026-03-13 · DOI: 10.1146/annurev-conmatphys-031424-011954Modeling Granular Segregation: Insights from Four Decades of Research
Anthony R. Thornton, Kimberly Hill, Lu Jing, Benjy Marks et al.
2026-03-13 · DOI: 10.1146/annurev-conmatphys-031424-125004Active Wetting: Statics and Dynamics
Amir Pahlavan, Michael Murrell
2026-03-13 · DOI: 10.1146/annurev-conmatphys-061225-105656The Rheology of Living Tissues: From Cells to Organismal Mechanics
Sayantani Kayal, Anh Q. Nguyen, Dapeng Bi
2026-03-13 · DOI: 10.1146/annurev-conmatphys-071125-054711Multiphase-Field Models of Tissues
Siavash Monfared, Aleksandra Ardaševa, Amin Doostmohammadi
2026-03-13 · DOI: 10.1146/annurev-conmatphys-060625-061354Robotic Matter
Marc Z. Miskin
2026-03-13 · DOI: 10.1146/annurev-conmatphys-031524-051559Two-Dimensional Bulk Ferroics
Qian Song, Riccardo Comin
2026-03-13 · DOI: 10.1146/annurev-conmatphys-060925-103154Twisted Nodal Superconductors
J. H. Pixley, Pavel A. Volkov
2026-03-13 · DOI: 10.1146/annurev-conmatphys-031524-063257Statistical Field Theory of Equilibrium Amorphous Solids and the Intrinsic Heterogeneity Distributions that Characterize Them
Paul M. Goldbart
2026-03-13 · DOI: 10.1146/annurev-conmatphys-071125-063050’t Hooft Anomalies in Metals
Dominic V. Else
2026-03-13 · DOI: 10.1146/annurev-conmatphys-031524-070514Self-Organization, Memory, and Learning: From Driven Disordered Systems to Living Matter
Muhittin Mungan, Eric Clément, Damien Vandembroucq, Srikanth Sastry et al.
2026-03-13 · DOI: 10.1146/annurev-conmatphys-082225-051908Reviews
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Version History
April 13, 2025 at 4:59 pm
April 13, 2025