Phil Salmon

1.8k total citations
38 papers, 959 citations indexed

About

Phil Salmon is a scholar working on Biomedical Engineering, Orthopedics and Sports Medicine and Radiology, Nuclear Medicine and Imaging. According to data from OpenAlex, Phil Salmon has authored 38 papers receiving a total of 959 indexed citations (citations by other indexed papers that have themselves been cited), including 14 papers in Biomedical Engineering, 12 papers in Orthopedics and Sports Medicine and 11 papers in Radiology, Nuclear Medicine and Imaging. Recurrent topics in Phil Salmon's work include Bone health and osteoporosis research (12 papers), Medical Imaging Techniques and Applications (11 papers) and Advanced X-ray Imaging Techniques (6 papers). Phil Salmon is often cited by papers focused on Bone health and osteoporosis research (12 papers), Medical Imaging Techniques and Applications (11 papers) and Advanced X-ray Imaging Techniques (6 papers). Phil Salmon collaborates with scholars based in United States, United Kingdom and Belgium. Phil Salmon's co-authors include Claes Ohlsson, Alexander Sasov, Michael Doube, Sandra J. Shefelbine, Dirk Vanderschueren, Katrien Venken, Joop G.C. Wolke, Xuan Liu, Marco A. Lopez-Heredia and John A. Jansen and has published in prestigious journals such as Proceedings of the National Academy of Sciences, Science Advances and Journal of Bone and Mineral Research.

In The Last Decade

Phil Salmon

37 papers receiving 934 citations

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Phil Salmon United States 18 273 226 225 130 125 38 959
Andreas Roschger Austria 19 315 1.2× 290 1.3× 489 2.2× 190 1.5× 140 1.1× 39 1.2k
Stéphane Blouin Austria 20 259 0.9× 146 0.6× 391 1.7× 178 1.4× 218 1.7× 78 921
Marian Kampschulte Germany 24 515 1.9× 378 1.7× 224 1.0× 74 0.6× 225 1.8× 81 1.7k
Gurjit S. Mandair United States 12 215 0.8× 268 1.2× 315 1.4× 53 0.4× 91 0.7× 28 1.1k
Massimo Marenzana United Kingdom 17 340 1.2× 217 1.0× 331 1.5× 108 0.8× 162 1.3× 31 1.1k
Mika Ikegame Japan 21 769 2.8× 165 0.7× 223 1.0× 139 1.1× 221 1.8× 66 1.4k
Roberto J. Fajardo United States 24 715 2.6× 117 0.5× 393 1.7× 102 0.8× 307 2.5× 37 1.6k
Esther Cory United States 22 270 1.0× 364 1.6× 224 1.0× 61 0.5× 70 0.6× 30 1.3k
Rhima M. Coleman United States 15 314 1.2× 291 1.3× 230 1.0× 64 0.5× 88 0.7× 27 1.2k
Nora De Clerck Belgium 16 191 0.7× 124 0.5× 148 0.7× 92 0.7× 71 0.6× 25 827

Countries citing papers authored by Phil Salmon

Since Specialization
Citations

This map shows the geographic impact of Phil Salmon'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 Phil Salmon with the expected number of citations based on a country's size and research output (numbers larger than one mean the country cites Phil Salmon more than expected).

Fields of papers citing papers by Phil Salmon

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by Phil Salmon. 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 Phil Salmon. The network helps show where Phil Salmon may publish in the future.

Co-authorship network of co-authors of Phil Salmon

This figure shows the co-authorship network connecting the top 25 collaborators of Phil Salmon. A scholar is included among the top collaborators of Phil Salmon 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 Phil Salmon. Phil Salmon 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
3.
Salmon, Phil, et al.. (2023). Resolving trabecular metaphyseal bone profiles downstream of the growth plate adds value to bone histomorphometry in mouse models. Frontiers in Endocrinology. 14. 1158099–1158099. 2 indexed citations
4.
Sánchez, José Antonio González, et al.. (2021). Micro–computed Tomographic Assessment and Comparative Study of the Shaping Ability of 6 Nickel-Titanium Files: An In Vitro Study. Journal of Endodontics. 47(5). 812–819. 46 indexed citations
5.
Tonelli, Francesca, Jan Willem Bek, Roberta Besio, et al.. (2020). Zebrafish: A Resourceful Vertebrate Model to Investigate Skeletal Disorders. Frontiers in Endocrinology. 11. 489–489. 91 indexed citations
6.
Clercq, Adelbert De, Shuji Mizumoto, Fredrik Noborn, et al.. (2020). b3galt6 Knock-Out Zebrafish Recapitulate β3GalT6-Deficiency Disorders in Human and Reveal a Trisaccharide Proteoglycan Linkage Region. Frontiers in Cell and Developmental Biology. 8. 597857–597857. 15 indexed citations
7.
Salmon, Phil, Willy Gsell, David Viertl, et al.. (2019). Low-Dose Imaging in a New Preclinical Total-Body PET/CT Scanner. Frontiers in Medicine. 6. 88–88. 22 indexed citations
8.
Verdelis, Kostas & Phil Salmon. (2019). Microcomputed Tomography Imaging in Odontogenesis Studies. Methods in molecular biology. 1922. 309–324. 5 indexed citations
10.
Sacco, Sandra M., et al.. (2016). Longitudinal Use of Micro-computed Tomography Does Not Alter Microarchitecture of the Proximal Tibia in Sham or Ovariectomized Sprague–Dawley Rats. Calcified Tissue International. 98(6). 631–641. 18 indexed citations
11.
Salmon, Phil, Claes Ohlsson, Sandra J. Shefelbine, & Michael Doube. (2015). Structure Model Index Does Not Measure Rods and Plates in Trabecular Bone. Frontiers in Endocrinology. 6. 162–162. 80 indexed citations
12.
Salmon, Phil. (2015). Non-Linear Pattern Formation in Bone Growth and Architecture. Frontiers in Endocrinology. 5. 239–239. 8 indexed citations
13.
Lopez-Heredia, Marco A., Yue Sa, Phil Salmon, et al.. (2012). Bulk properties and bioactivity assessment of porous polymethylmethacrylate cement loaded with calcium phosphates under simulated physiological conditions. Acta Biomaterialia. 8(8). 3120–3127. 38 indexed citations
14.
Lopez-Heredia, Marco A., Shan‐hui Hsu, Sander C.G. Leeuwenburgh, et al.. (2012). Bulk physicochemical, interconnectivity, and mechanical properties of calcium phosphate cements–fibrin glue composites for bone substitute applications. Journal of Biomedical Materials Research Part A. 101A(2). 478–490. 16 indexed citations
15.
Lopez-Heredia, Marco A., Kemal Sariibrahimoğlu, Wanxun Yang, et al.. (2011). Influence of the pore generator on the evolution of the mechanical properties and the porosity and interconnectivity of a calcium phosphate cement. Acta Biomaterialia. 8(1). 404–414. 56 indexed citations
16.
Salmon, Phil, Xuan Liu, & Alexander Sasov. (2009). A post-scan method for correcting artefacts of slow geometry changes during micro-tomographic scans. Journal of X-Ray Science and Technology. 17(2). 161–174. 1 indexed citations
17.
Backer, Jan W. De, Wim Vos, P.K.P. Burnell, et al.. (2009). Study of the Variability in Upper and Lower Airway Morphology in Sprague–Dawley Rats Using Modern Micro‐CT Scan‐Based Segmentation Techniques. The Anatomical Record. 292(5). 720–727. 29 indexed citations
18.
Perilli, Egon, et al.. (2009). Detecting early bone changes using in vivo micro-CT in ovariectomized, zoledronic acid-treated, and sham-operated rats. Osteoporosis International. 21(8). 1371–1382. 63 indexed citations
20.
McLaughlin, Fiona, J. Mackintosh, Iain Uings, et al.. (2002). Glucocorticoid-induced osteopenia in the mouse as assessed by histomorphometry, microcomputed tomography, and biochemical markers. Bone. 30(6). 924–930. 92 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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