Feng Peng | Condensed Matter Physics | Best Researcher Award

Global Physics Awards

Feng Peng
Luoyang Normal University, China

Feng Peng
Affiliation Luoyang Normal University
Country China
Scopus ID 57209192020
Documents 95
Citations 4,129
h-index 32
Subject Area Condensed Matter Physics
Event Global Physics Awards
ORCID 0000-0001-6501-5148

Feng Peng is affiliated with Luoyang Normal University in China and is associated with the research area of condensed matter physics. The supplied Scopus information reports 95 documents, 4,129 citations, and an h-index of 32 for Scopus Author ID 57209192020. These bibliometric indicators provide quantitative information about indexed scholarly activity and should be interpreted alongside publication quality, research contributions, collaboration, and field-specific citation practices.
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Abstract

This academic recognition profile presents information about Feng Peng of Luoyang Normal University, China, in relation to the Global Physics Awards. The supplied researcher information identifies condensed matter physics as the principal subject area and reports 95 documents, 4,129 citations, and an h-index of 32 in the associated Scopus author record.
[1][2]

Keywords

Feng Peng; Condensed Matter Physics; Physics Research; Materials Physics; Solid-State Physics; Nanomaterials; Research Impact; Bibliometrics; Scopus; Global Physics Awards; Luoyang Normal University; China.

Introduction

Condensed matter physics is a major area of modern physics concerned with the properties and behavior of matter in systems containing large numbers of interacting particles. Its scope includes electronic, magnetic, optical, structural, thermal, and mechanical properties of materials, as well as phenomena arising from collective interactions.[1]

Research Profile

The supplied academic profile identifies Feng Peng with Luoyang Normal University in China. The stated subject area is condensed matter physics, a broad discipline encompassing research on the physical properties of condensed phases and complex material systems. The associated Scopus Author ID is 57209192020.
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Research Contributions

Research within condensed matter physics can address fundamental questions concerning materials, interactions, electronic and magnetic properties, phase behavior, nanostructures, and emergent physical phenomena. The supplied subject-area classification places Feng Peng’s research profile within this broad scientific domain[1]

Publications

The supplied Scopus profile reports 95 documents associated with Feng Peng and Author ID 57209192020.Digital Object Identifiers, where available, provide persistent identifiers for individual scholarly publications. No specific publication title or DOI was supplied with the researcher information in this request; therefore, individual DOI records are not attributed to Feng Peng without verified bibliographic data.[1][2]

Research Impact

Research impact can be assessed through multiple dimensions, including scholarly citations, quality and originality of publications, methodological contributions, collaboration, reproducibility, educational influence, and practical or technological applications.[1]

Award Suitability

The supplied academic information provides several factors that may be considered when evaluating Feng Peng for recognition within a physics awards framework. These include the stated alignment with condensed matter physics, a reported record of 95 documents, 4,129 citations, and an h-index of 32.[1][2]

Conclusion

Feng Peng is identified in the supplied information as a researcher affiliated with Luoyang Normal University, China, with a research subject area of condensed matter physics. The reported Scopus profile contains 95 documents, 4,129 citations, and an h-index of 32.
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References

  1. Elsevier (2026). Scopus author details: Feng Peng, Author ID 57209192020. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=57209192020
  2. ORCID (2026.). ORCID record: Feng Peng. ORCID.
    https://orcid.org/0000-0001-6501-5148
  3. Pre-straining cubic SiC nanopowders via ultrafast Joule-heating treatment to engineer stacking faults for hardness enhancement in high-pressure sintered ceramics.
    https://www.sciencedirect.com/science/article/abs/pii/S0955221926006795
  4. Global Physics Awards (2026.). Official Global Physics Awards Website.
    https://globalphysicsawards.com/