Shigeki Kuroki

3.3k total citations
113 papers, 2.5k citations indexed

About

Shigeki Kuroki is a scholar working on Spectroscopy, Electrical and Electronic Engineering and Materials Chemistry. According to data from OpenAlex, Shigeki Kuroki has authored 113 papers receiving a total of 2.5k indexed citations (citations by other indexed papers that have themselves been cited), including 66 papers in Spectroscopy, 32 papers in Electrical and Electronic Engineering and 31 papers in Materials Chemistry. Recurrent topics in Shigeki Kuroki's work include Advanced NMR Techniques and Applications (63 papers), NMR spectroscopy and applications (30 papers) and Advanced Battery Materials and Technologies (16 papers). Shigeki Kuroki is often cited by papers focused on Advanced NMR Techniques and Applications (63 papers), NMR spectroscopy and applications (30 papers) and Advanced Battery Materials and Technologies (16 papers). Shigeki Kuroki collaborates with scholars based in Japan, United States and United Kingdom. Shigeki Kuroki's co-authors include Isao Ando, Yuta Nabae, Seizo Miyata, Takuo Ozaki, Akira Shoji, Hiromichi Kurosu, Stephen Matthew Lyth, Jun‐ichi Ozaki, Shogo Moriya and Masanobu Nakayama and has published in prestigious journals such as Journal of the American Chemical Society, The Journal of Chemical Physics and Energy & Environmental Science.

In The Last Decade

Shigeki Kuroki

112 papers receiving 2.4k citations

Peers — A (Enhanced Table)

Peers by citation overlap · career bar shows stage (early→late) cites · hero ref

Name h Career Trend Papers Cites
Shigeki Kuroki Japan 26 908 800 745 481 335 113 2.5k
Claudiu Filip Romania 18 717 0.8× 721 0.9× 300 0.4× 99 0.2× 271 0.8× 60 2.0k
Yonggang Yang China 36 2.4k 2.6× 466 0.6× 976 1.3× 246 0.5× 201 0.6× 269 4.5k
Maria Baias Germany 20 771 0.8× 489 0.6× 125 0.2× 121 0.3× 51 0.2× 40 1.4k
Swapna Ganapathy Netherlands 40 1.6k 1.7× 243 0.3× 5.1k 6.8× 240 0.5× 231 0.7× 87 6.2k
Patrick Schmidt‐Winkel United States 12 1.9k 2.1× 324 0.4× 473 0.6× 123 0.3× 97 0.3× 15 2.9k
Datong Ding China 31 2.0k 2.2× 131 0.2× 361 0.5× 233 0.5× 532 1.6× 87 2.8k
D. Guillon France 34 1.7k 1.8× 743 0.9× 341 0.5× 311 0.6× 357 1.1× 117 3.7k
Zhen‐Qiang Yu China 37 2.4k 2.7× 607 0.8× 1.1k 1.5× 902 1.9× 340 1.0× 114 3.9k
Lauren E. Marbella United States 28 1.3k 1.5× 198 0.2× 2.9k 3.9× 158 0.3× 238 0.7× 59 4.2k
Zhaolong Wang China 19 923 1.0× 432 0.5× 349 0.5× 37 0.1× 121 0.4× 69 1.6k

Countries citing papers authored by Shigeki Kuroki

Since Specialization
Citations

This map shows the geographic impact of Shigeki Kuroki's research. It shows the number of citations coming from papers published by authors working in each country. You can also color the map by specialization and compare the number of citations received by Shigeki Kuroki with the expected number of citations based on a country's size and research output (numbers larger than one mean the country cites Shigeki Kuroki more than expected).

Fields of papers citing papers by Shigeki Kuroki

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by Shigeki Kuroki. Nodes represent research fields, and links connect fields that are likely to share authors. Colored nodes show fields that tend to cite the papers produced by Shigeki Kuroki. The network helps show where Shigeki Kuroki may publish in the future.

Co-authorship network of co-authors of Shigeki Kuroki

This figure shows the co-authorship network connecting the top 25 collaborators of Shigeki Kuroki. A scholar is included among the top collaborators of Shigeki Kuroki based on the total number of citations received by their joint publications. Widths of edges represent the number of papers authors have co-authored together. Node borders signify the number of papers an author published with Shigeki Kuroki. Shigeki Kuroki is excluded from the visualization to improve readability, since they are connected to all nodes in the network.

All Works

20 of 20 papers shown
1.
Kuroki, Shigeki, et al.. (2012). Double conformational transition of alkali metal poly(l-glutamate)s in aqueous ethanol. Biophysical Chemistry. 165-166. 48–55. 6 indexed citations
2.
Kuroki, Shigeki, Yuta Nabae, Masa‐aki Kakimoto, & Seizo Miyata. (2011). Oxygen Reduction Activity of Pyrolyzed Polyanilines Studied by 15N Solid-State NMR and XPS with Principal Component Analysis. ECS Transactions. 41(1). 2269–2276. 3 indexed citations
3.
Lyth, Stephen Matthew, Yuta Nabae, Nazrul Islam, et al.. (2010). Electrochemical Oxygen Reduction on Carbon Nitride. ECS Transactions. 28(23). 11–26. 4 indexed citations
4.
Nakayama, Masanobu, et al.. (2009). 高分子電解質用の可塑剤としてPEG‐ホウ酸エステル/アルミン酸エステルを用いた全固体リチウム高分子2次電池のキャパシティーフェージング機構. Advanced Functional Materials. 19(6). 918–925. 1 indexed citations
5.
Wada, S., et al.. (2009). Dynamic Transport in Li‐Conductive Polymer Electrolytes Plasticized with Poly(ethylene glycol)–Borate/Aluminate Ester. ChemPhysChem. 10(11). 1911–1915. 19 indexed citations
6.
Nabae, Yuta, Michal Maloň, Stephen Matthew Lyth, et al.. (2009). The Role of Fe in the Preparation of Carbon Alloy Cathode Catalysts. ECS Meeting Abstracts. MA2009-02(10). 836–836. 1 indexed citations
7.
Hayashi, Mariko, et al.. (2009). Counterion mixing effects on the conformational transitions of polyelectrolytes. II. Counterion binding as measured by NMR spectroscopy of alkali metal poly(acrylate)s. Journal of Polymer Science Part B Polymer Physics. 47(21). 2132–2139. 12 indexed citations
8.
Kim, Sunmi, Shigeki Kuroki, & Isao Ando. (2005). Diffusional behavior of n-paraffins with various chain lengths in urea adduct channels by pulsed field-gradient spin-echo NMR spectroscopy. Chemical Physics. 323(2-3). 545–552. 4 indexed citations
10.
11.
Matsui, M., et al.. (2003). Diffusional Inhomogeneity of Probe Molecules in Chemically Cross-Linked Polymer Gels As Studied by Time-Dependent Diffusion NMR. Macromolecules. 36(15). 5655–5660. 20 indexed citations
13.
Lin, Victor S.‐Y., Daniela R. Radu, Mi‐Kyung Han, et al.. (2002). Oxidative Polymerization of 1,4-Diethynylbenzene into Highly Conjugated Poly(phenylene butadiynylene) within the Channels of Surface-Functionalized Mesoporous Silica and Alumina Materials. Journal of the American Chemical Society. 124(31). 9040–9041. 109 indexed citations
14.
Kuroki, Shigeki, et al.. (2001). Structural changes of bulk polyethylene by stress impact as studied by solid‐state NMR. Journal of Applied Polymer Science. 82(9). 2268–2272. 7 indexed citations
16.
Kuroki, Shigeki, et al.. (1998). Analysis of X-Ray Photoelectron Spectra of Silicon-Based Polymers by deMon Density-Functional Calculations Using Model Molecules. Polymer Journal. 30(2). 142–148. 17 indexed citations
17.
Tsuchiya, Kaoru, Akihiro Takahashi, N. Takeda, et al.. (1995). Hydrogen-bonding effect on 13C NMR chemical shifts of amino acid residue carbonyl carbons of some peptides in the crystalline state. Journal of Molecular Structure. 350(3). 233–240. 37 indexed citations
18.
Kuroki, Shigeki, Shinji Ando, & Isao Ando. (1995). An MO study of nuclear quadrupolar coupling constant and nuclear shielding of the carbonyl oxygen in solid peptides with hydrogen bonds. Chemical Physics. 195(1-3). 107–116. 20 indexed citations
19.
Katoh, Etsuko, Hiromichi Kurosu, Shigeki Kuroki, & Isao Ando. (1994). Conformation and molecular motion of a poly(l-glutamate) with long n-alkyl side-chains in the solid state and the liquid-crystalline state as studied by high-resolution 13C NMR spectroscopy. Part 2. Journal of Molecular Structure. 326. 145–150. 3 indexed citations
20.
Asakawa, Naoki, Shigeki Kuroki, Hiromichi Kurosu, et al.. (1992). Hydrogen-bonding effect on carbon-13 NMR chemical shifts of L-alanine residue carbonyl carbons of peptides in the solid state. Journal of the American Chemical Society. 114(9). 3261–3265. 121 indexed citations

Rankless uses publication and citation data sourced from OpenAlex, an open and comprehensive bibliographic database. While OpenAlex provides broad and valuable coverage of the global research landscape, it—like all bibliographic datasets—has inherent limitations. These include incomplete records, variations in author disambiguation, differences in journal indexing, and delays in data updates. As a result, some metrics and network relationships displayed in Rankless may not fully capture the entirety of a scholar's output or impact.

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