S N Murthy Boddapati | Transition Metal Catalysis | Best Researcher Award

Best Researcher Award

S N Murthy Boddapati
Sir C R Reddy College, PG Courses, India

S N Murthy Boddapati
Affiliation Sir C R Reddy College, PG Courses
Country India
Scopus ID 57200335914
Documents 24
Citations 277
h-index 10
Subject Area Transition Metal Catalysis
Event Metallurgical Engineering Awards
ORCID 0000-0002-0703-9827

S N Murthy Boddapati is a researcher affiliated with Sir C R Reddy College, PG Courses, India, whose scholarly profile is associated with the field of transition metal catalysis. The available bibliographic profile records 24 documents, 277 citations, and an h-index of 10. These indicators provide a quantitative overview of the visibility and citation impact of the researcher’s indexed scholarly output and are reported through the researcher’s Scopus author profile. [1]

Abstract

S N Murthy Boddapati is an India-based researcher whose academic profile is situated in transition metal catalysis. The documented scholarly record comprises 24 Scopus-indexed documents, with 277 citations and an h-index of 10 at the time represented by the supplied profile information. [1] Transition metal catalysis is an important area of modern chemistry because metal complexes and catalytic systems can facilitate bond-forming and bond-breaking processes with applications across organic synthesis, materials chemistry, energy-related chemistry, and industrial processes. The researcher’s profile and identifiers provide a basis for evaluating scholarly activity, publication continuity, and citation influence within this broad research domain. The ORCID record provides an additional persistent identifier for distinguishing the researcher and associating scholarly contributions with the appropriate academic profile. [2]

Keywords

Transition metal catalysis; homogeneous catalysis; heterogeneous catalysis; catalytic reaction mechanisms; organometallic chemistry; metal-mediated synthesis; catalytic efficiency; chemical synthesis; metallurgical engineering; research impact.

Introduction

Transition metal catalysis encompasses the use of transition-metal elements and their compounds to promote chemical transformations under controlled reaction conditions. The field combines principles from inorganic chemistry, organometallic chemistry, physical chemistry, and synthetic chemistry. Catalysts containing transition metals can provide alternative reaction pathways with improved selectivity or reaction rates, making catalytic design an important component of contemporary chemical research. [1]

Research Profile

The research profile of S N Murthy Boddapati is associated with transition metal catalysis, a research area involving the design, study, and application of metal-containing catalytic systems. The supplied Scopus profile identifies the researcher through Author ID 57200335914 and records 24 documents, 277 citations, and an h-index of 10. [1] The corresponding ORCID identifier, 0000-0002-0703-9827, provides a persistent researcher identifier that can support accurate attribution of scholarly work. [2]

Research Contributions

Research in transition metal catalysis can contribute to the development of more selective, efficient, and controllable chemical transformations. Within this research landscape, relevant scholarly contributions may include catalyst preparation and characterization, reaction optimization, mechanistic interpretation, substrate transformation, selectivity studies, and the development of catalytic methodologies. [5]

Publications

The supplied academic profile records 24 documents indexed through Scopus. [1] The publication portfolio is associated with the subject area of transition metal catalysis. A complete assessment of the individual publications would require examination of the indexed publication records, including article titles, journals, authorship, publication years, citation counts, and persistent identifiers such as DOIs. [3]

Research Impact

The reported 277 citations and h-index of 10 indicate that the researcher’s indexed publications have received measurable scholarly attention. [4] Citation indicators should be interpreted as quantitative measures of research visibility rather than as standalone assessments of scientific quality. Factors such as field-specific citation practices, publication age, collaboration patterns, journal coverage, and differences among bibliographic databases can influence these measures.

Award Suitability

The Best Researcher Award recognizes researchers whose documented scholarly activity demonstrates sustained engagement with a defined research area and an identifiable contribution to the academic literature. S N Murthy Boddapati’s profile is aligned with this framework through its association with transition metal catalysis, 24 indexed documents, 277 citations, and an h-index of 10. [1]

Conclusion

S N Murthy Boddapati is associated with research in transition metal catalysis and has an indexed scholarly profile comprising 24 documents, 277 citations, and an h-index of 10. [1] The combination of a defined research subject, documented publication activity, citation record, and persistent researcher identification provides a suitable basis for academic recognition under a Best Researcher Award framework. Continued evaluation of the researcher’s individual publications and their scientific contributions can provide further evidence of research quality, originality, and influence.

References

  1. Elsevier. (n.d.). Scopus author details: S N Murthy Boddapati, Author ID 57200335914. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=57200335914
  2. SNM Boddapati, R Tamminana, et al. (2025). An efficient Cu catalyzed regioselective Ortho-nitration approach for the synthesis of 2-nitroarylcyanamides: Molecular docking and ADME studies.
    https://www.sciencedirect.com/science/article/abs/pii/S0022286025000985
  3. VVKV Juthiga, SNM Boddapati, M Balha, R Tamminana. (2025). Comprehensive review on green methods: Synthesis of benzothiazoles.
    https://www.sciencedirect.com/science/article/pii/S221171562500195X
  4. SNM Boddapati, B Chalapaka, AE Kola, SB Jonnalagadda. (2025). Recent advances in synthetic strategies and biological properties of indazole scaffolds: A review.
    https://link.springer.com/article/10.1007/s41061-025-00509-9
  5. SNM Boddapati, R Tamminana, et al. (2020). Copper-promoted one-pot approach: Synthesis of benzimidazoles.
    https://www.mdpi.com/1420-3049/25/8/1788

Liu Feng | Nanocatalytic | Best Researcher Award

Prof. Liu Feng | Nanocatalytic | Best Researcher Award

Head of Research Office at Yunnan Precious Metals Lab | China

Dr. Liu Feng is a distinguished researcher from China specializing in precious metal nanocatalytic materials, currently affiliated with the Yunnan Precious Metal Laboratory in Kunming City, Yunnan Province. He earned his doctoral degree and has established himself as a leading expert in advanced catalyst design and electrochemical energy conversion. With 87 published documents, 896 total citations, and an h-index of 15 on Scopus, Dr. Liu has made substantial contributions to the field of nanocatalysis and sustainable energy materials. His work primarily focuses on the synthesis, structural modulation, and performance optimization of noble metal-based catalysts for hydrogen evolution and oxygen evolution reactions in water-splitting systems. Among his representative publications are “Size optimization of IrOx nanoparticles synthesized by Br mediation for enhanced PEM water electrolysis” (Molecular Catalysis, 2024), “Atomic Strain Wave-Featured LaRuIr Nanocrystals: Achieving Simultaneous Enhancement of Catalytic Activity and Stability toward Acidic Water Splitting” (Small, 2024), and “Ruddlesden–Popper Sr4Ir3O10 Perovskite: A New Family for Water Splitting Driven by Interlayer Oxygen Migration” (Applied Catalysis B: Environmental, 2024). His additional works in Green Energy & Environment, Journal of Energy Chemistry, and Nano Research further highlight his innovative research on Ru-Ir-Mn oxide systems and bimetallic catalysts for efficient energy conversion. Dr. Liu’s research not only deepens the understanding of nanocatalyst mechanisms but also advances the development of durable and high-performance electrocatalytic materials for clean energy technologies.

Profile: Scopus | ORCID | Google Scholar

Feautured Publications

Zhu, L., Zhang, M., Xu, J., Li, C., Yan, J., Zhou, G., Zhong, W., Hao, T., Song, J., & others. (2022). Single-junction organic solar cells with over 19% efficiency enabled by a refined double-fibril network morphology. Nature Materials, 21(6), 656–663. Cited by: 2,209

Li, C., Zhou, J., Song, J., Xu, J., Zhang, H., Zhang, X., Guo, J., Zhu, L., Wei, D., Han, G., & others. (2021). Non-fullerene acceptors with branched side chains and improved molecular packing to exceed 18% efficiency in organic solar cells. Nature Energy, 6(6), 605–613. Cited by: 1,974

He, Z., Xiao, B., Liu, F., Wu, H., Yang, Y., Xiao, S., Wang, C., Russell, T. P., & Cao, Y. (2015). Single-junction polymer solar cells with high efficiency and photovoltage. Nature Photonics, 9(3), 174–179. Cited by: 1,890

Kan, B., Li, M., Zhang, Q., Liu, F., Wan, X., Wang, Y., Ni, W., Long, G., Yang, X., & others. (2015). A series of simple oligomer-like small molecules based on oligothiophenes for solution-processed solar cells with high efficiency. Journal of the American Chemical Society, 137(11), 3886–3893. Cited by: 918

Zhang, Q., Kan, B., Liu, F., Long, G., Wan, X., Chen, X., Zuo, Y., Ni, W., Zhang, H., & others. (2015). Small-molecule solar cells with efficiency over 9%. Nature Photonics, 9(1), 35–41. Cited by: 901