Laurie B. Gower

7.6k total citations · 3 hit papers
86 papers, 6.4k citations indexed

About

Laurie B. Gower is a scholar working on Biomaterials, Biomedical Engineering and Rheumatology. According to data from OpenAlex, Laurie B. Gower has authored 86 papers receiving a total of 6.4k indexed citations (citations by other indexed papers that have themselves been cited), including 61 papers in Biomaterials, 52 papers in Biomedical Engineering and 14 papers in Rheumatology. Recurrent topics in Laurie B. Gower's work include Calcium Carbonate Crystallization and Inhibition (51 papers), Bone Tissue Engineering Materials (48 papers) and Bone and Dental Protein Studies (14 papers). Laurie B. Gower is often cited by papers focused on Calcium Carbonate Crystallization and Inhibition (51 papers), Bone Tissue Engineering Materials (48 papers) and Bone and Dental Protein Studies (14 papers). Laurie B. Gower collaborates with scholars based in United States, Germany and United Kingdom. Laurie B. Gower's co-authors include Matthew J. Olszta, Elliot P. Douglas, Xingguo Cheng, Yi‐Yeoun Kim, Sang Soo Jee, R. Kumar, M.J. Kaufman, David A. Tirrell, Taili T. Thula and Douglas E. Rodriguez and has published in prestigious journals such as Chemical Reviews, Physical Review Letters and Advanced Materials.

In The Last Decade

Laurie B. Gower

85 papers receiving 6.3k citations

Hit Papers

Bone structure and format... 2000 2026 2008 2017 2007 2008 2000 400 800 1.2k

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Laurie B. Gower United States 35 4.2k 3.7k 938 879 754 86 6.4k
Fabio Nudelman United Kingdom 26 3.0k 0.7× 2.1k 0.6× 429 0.5× 845 1.0× 825 1.1× 54 4.8k
Giuseppe Falini Italy 47 4.5k 1.1× 2.8k 0.8× 350 0.4× 1.5k 1.7× 1.1k 1.5× 229 8.4k
Ruikang Tang China 60 4.9k 1.2× 6.2k 1.7× 830 0.9× 2.2k 2.6× 404 0.5× 290 12.1k
Haihua Pan China 43 2.2k 0.5× 3.0k 0.8× 488 0.5× 939 1.1× 192 0.3× 112 5.3k
Yi‐Yeoun Kim United Kingdom 35 3.1k 0.8× 2.2k 0.6× 282 0.3× 1.2k 1.3× 666 0.9× 71 4.9k
Elia Beniash United States 43 7.0k 1.7× 3.0k 0.8× 2.0k 2.1× 1.3k 1.5× 408 0.5× 95 12.1k
Himadri S. Gupta United Kingdom 36 2.3k 0.5× 2.9k 0.8× 432 0.5× 682 0.8× 240 0.3× 88 5.8k
Paul H. H. Bomans Netherlands 49 4.2k 1.0× 2.9k 0.8× 671 0.7× 3.1k 3.6× 467 0.6× 113 9.5k
Xurong Xu China 44 2.2k 0.5× 2.5k 0.7× 211 0.2× 2.0k 2.3× 267 0.4× 227 6.4k
Jinhui Tao United States 37 1.8k 0.4× 2.0k 0.6× 395 0.4× 965 1.1× 226 0.3× 98 5.1k

Countries citing papers authored by Laurie B. Gower

Since Specialization
Citations

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

Fields of papers citing papers by Laurie B. Gower

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by Laurie B. Gower. 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 Laurie B. Gower. The network helps show where Laurie B. Gower may publish in the future.

Co-authorship network of co-authors of Laurie B. Gower

This figure shows the co-authorship network connecting the top 25 collaborators of Laurie B. Gower. A scholar is included among the top collaborators of Laurie B. Gower 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 Laurie B. Gower. Laurie B. Gower 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.
Gower, Laurie B.. (2025). Spiers Memorial Lecture: A retrospective view on the non-classical features revealed by advanced imaging of biominerals. Faraday Discussions. 261(0). 11–67. 1 indexed citations
2.
Gower, Laurie B., et al.. (2023). Influence of Crosslinking Methods on Biomimetically Mineralized Collagen Matrices for Bone-like Biomaterials. Polymers. 15(9). 1981–1981. 5 indexed citations
3.
Gower, Laurie B., et al.. (2021). Colloid assembly and transformation (CAT): The relationship of PILP to biomineralization. SHILAP Revista de lepidopterología. 6. 100059–100059. 15 indexed citations
4.
Uskoković, Vuk, Gabriel Flores Abuna, Victoria Wu, et al.. (2021). Synthesis and characterization of nanoparticulate niobium- and zinc-doped bioglass-ceramic/chitosan hybrids for dental applications. Journal of Sol-Gel Science and Technology. 97(2). 245–258. 23 indexed citations
6.
Habelitz, Stefan, et al.. (2019). Remineralization of demineralized dentin using a dual analog system. Orthodontics and Craniofacial Research. 22(S1). 76–81. 18 indexed citations
7.
Nurrohman, Hamid, et al.. (2018). Influence of fluoride on the mineralization of collagen via the polymer-induced liquid-precursor (PILP) process. Dental Materials. 34(9). 1378–1390. 31 indexed citations
8.
Nurrohman, Hamid, Karina M. M. Carneiro, Yung‐Ching Chien, et al.. (2016). Repair of dentin defects from DSPP knockout mice by PILP mineralization. Journal of materials research/Pratt's guide to venture capital sources. 31(3). 321–327. 24 indexed citations
9.
Ruberti, Jeffrey W., et al.. (2016). Biomimetic organization of collagen matrices to template bone-like microstructures. Matrix Biology. 52-54. 384–396. 57 indexed citations
10.
Rodriguez, Douglas E., et al.. (2014). Biomimetic Randall’s plaque as an in vitro model system for studying the role of acidic biopolymers in idiopathic stone formation. Urolithiasis. 43(S1). 77–92. 17 indexed citations
11.
Burwell, Anora K., Laurie B. Gower, Sunita P. Ho, et al.. (2013). Correction: Functional Remineralization of Dentin Lesions Using Polymer-Induced Liquid-Precursor Process. PLoS ONE. 8(5). 1 indexed citations
12.
Antebi, Ben, et al.. (2012). Biomimetic Collagen–Hydroxyapatite Composite Fabricated via a Novel Perfusion-Flow Mineralization Technique. Tissue Engineering Part C Methods. 19(7). 487–496. 62 indexed citations
13.
Jiang, Yuan, et al.. (2012). Microdomain Transformations in Mosaic Mesocrystal Thin Films. Advanced Functional Materials. 23(12). 1547–1555. 19 indexed citations
14.
Burwell, Anora K., et al.. (2011). Remineralization of Artificial Dentin Lesions via the Polymer-Induced Liquid-Precursor (PILP) Process. MRS Proceedings. 1355. 1114–1114. 12 indexed citations
16.
DiMasi, Elaine, et al.. (2006). Complementary Control by Additives of the Kinetics of AmorphousCaCO3Mineralization at an Organic Interface:In-SituSynchrotron X-Ray Observations. Physical Review Letters. 97(4). 45503–45503. 53 indexed citations
17.
Volkmer, Dirk, Marc Harms, Laurie B. Gower, & Andreas Ziegler. (2004). Morphosynthese lamellierter perlmuttartiger CaCO3‐Dünnfilme und ‐Beschichtungen. Angewandte Chemie. 117(4). 645–650. 10 indexed citations
18.
Gower, Laurie B., et al.. (2003). Formation of Complex Non-Equilibrium Morphologies of Calcite via Biomimetic Processing. MRS Proceedings. 774. 8 indexed citations
19.
Pennisi, Svoboda V., et al.. (2001). Periplasmic cuticular calcium oxalate crystal deposition in Dracaena sanderiana. New Phytologist. 149(2). 209–218. 24 indexed citations
20.
Lyman, Donald J. & Laurie B. Gower. (1995). Effect of infrared salt crystals on the spectra of copolyether-urethane-urea films. Vibrational Spectroscopy. 9(2). 203–207. 1 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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