Eric Schaible

4.3k total citations · 1 hit paper
59 papers, 3.6k citations indexed

About

Eric Schaible is a scholar working on Electrical and Electronic Engineering, Materials Chemistry and Biomaterials. According to data from OpenAlex, Eric Schaible has authored 59 papers receiving a total of 3.6k indexed citations (citations by other indexed papers that have themselves been cited), including 16 papers in Electrical and Electronic Engineering, 14 papers in Materials Chemistry and 12 papers in Biomaterials. Recurrent topics in Eric Schaible's work include Bone health and osteoporosis research (12 papers), Organic Electronics and Photovoltaics (7 papers) and Calcium Carbonate Crystallization and Inhibition (7 papers). Eric Schaible is often cited by papers focused on Bone health and osteoporosis research (12 papers), Organic Electronics and Photovoltaics (7 papers) and Calcium Carbonate Crystallization and Inhibition (7 papers). Eric Schaible collaborates with scholars based in United States, Germany and Australia. Eric Schaible's co-authors include Robert O. Ritchie, Elizabeth A. Zimmermann, Bernd Gludovatz, Marc A. Meyers, Wen Yang, Alexander Hexemer, Simon Y. Tang, Tamara Alliston, Alastair A. MacDowell and Björn Busse and has published in prestigious journals such as Proceedings of the National Academy of Sciences, Journal of the American Chemical Society and Advanced Materials.

In The Last Decade

Eric Schaible

57 papers receiving 3.6k citations

Hit Papers

A SAXS/WAXS/GISAXS Beamline with Multilayer Monochromator 2010 2026 2015 2020 2010 100 200 300 400 500

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Eric Schaible United States 26 1.1k 951 803 784 674 59 3.6k
Admir Mašić Germany 38 263 0.2× 1.4k 1.4× 381 0.5× 1.7k 2.2× 817 1.2× 64 4.4k
Johannes H. Kindt United States 21 315 0.3× 1.5k 1.6× 226 0.3× 1.6k 2.0× 420 0.6× 34 3.7k
Asa H. Barber United Kingdom 38 283 0.3× 1.9k 2.0× 1.5k 1.8× 1.2k 1.5× 2.0k 3.0× 91 4.9k
Zhao Qin United States 44 481 0.5× 2.4k 2.6× 513 0.6× 2.0k 2.5× 1.9k 2.8× 158 7.0k
Andrzej Kulik Switzerland 28 616 0.6× 1.7k 1.8× 607 0.8× 341 0.4× 3.2k 4.8× 78 5.7k
Yang Ju Japan 30 877 0.8× 934 1.0× 88 0.1× 323 0.4× 717 1.1× 238 3.9k
Christine Ortiz United States 49 284 0.3× 2.3k 2.4× 561 0.7× 2.0k 2.6× 934 1.4× 113 6.7k
Wolfgang Wagermaier Germany 41 149 0.1× 2.3k 2.4× 541 0.7× 1.6k 2.1× 853 1.3× 104 5.3k
George W. Greene United States 34 1.0k 1.0× 799 0.8× 288 0.4× 257 0.3× 367 0.5× 120 4.4k
Nicholas D. Evans United Kingdom 28 511 0.5× 2.2k 2.3× 158 0.2× 1.3k 1.6× 753 1.1× 97 5.0k

Countries citing papers authored by Eric Schaible

Since Specialization
Citations

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

Fields of papers citing papers by Eric Schaible

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Eric Schaible

This figure shows the co-authorship network connecting the top 25 collaborators of Eric Schaible. A scholar is included among the top collaborators of Eric Schaible 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 Eric Schaible. Eric Schaible 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
2.
Schaible, Eric, Nathaniel A. Lynd, Kristofer L. Gleason, et al.. (2025). Crossflow membrane filtration system for operando fouling characterization using transmission x-ray scattering. Review of Scientific Instruments. 96(6). 1 indexed citations
3.
Schaible, Eric, Yunfei Wang, Harold Barnard, et al.. (2025). High-Throughput Robotic GIWAXS at ALS SAXS/WAXS Beamline. Europe PMC (PubMed Central). 1(1). 35–44. 1 indexed citations
4.
Yu, Jingyi, Guillaume Freychet, Mikhail Zhernenkov, et al.. (2024). Dynamic Structural Change of Plant Epidermal Cell Walls under Strain. Small. 20(30). e2311832–e2311832. 6 indexed citations
5.
Schurman, Charles A., Neha S. Dole, Natalia Castillo, et al.. (2024). Aging impairs the osteocytic regulation of collagen integrity and bone quality. Bone Research. 12(1). 13–13. 11 indexed citations
6.
Sato, Amy Y., Meloney Cregor, Kevin McAndrews, et al.. (2024). Pharmacologic or genetic interference with atrogene signaling protects against glucocorticoid-induced musculoskeletal and cardiac disease. JCI Insight. 9(21). 1 indexed citations
8.
Wölfel, Eva Maria, Felix N. Schmidt, Annika vom Scheidt, et al.. (2020). Dimorphic Mechanisms of Fragility in Diabetes Mellitus: the Role of Reduced Collagen Fibril Deformation. Journal of Bone and Mineral Research. 37(11). 2259–2276. 13 indexed citations
9.
Prévôt, Marianne E., Benjamin M. Yavitt, Guillaume Freychet, et al.. (2020). Mechanically tunable elastomer and cellulose nanocrystal composites as scaffolds for in vitro cell studies. Materials Advances. 2(1). 464–476. 19 indexed citations
10.
Quan, Haocheng, et al.. (2020). Structure and Mechanical Adaptability of a Modern Elasmoid Fish Scale from the Common Carp. Matter. 3(3). 842–863. 63 indexed citations
11.
Naleway, Steven E., Maryam Sadat Hosseini, Claire Acevedo, et al.. (2020). The role of collagen in the dermal armor of the boxfish. Journal of Materials Research and Technology. 9(6). 13825–13841. 11 indexed citations
12.
Heveran, Chelsea M., Charles A. Schurman, Claire Acevedo, et al.. (2019). Chronic kidney disease and aging differentially diminish bone material and microarchitecture in C57Bl/6 mice. Bone. 127. 91–103. 42 indexed citations
13.
Sharma, Richa, April M. Sawvel, Bastian Barton, et al.. (2018). Modulation of Carrier Type in Nanocrystal-in-Matrix Composites by Interfacial Doping. Chemistry of Materials. 30(8). 2544–2549. 1 indexed citations
14.
Liu, Feng, Sunzida Ferdous, Chenhui Zhu, et al.. (2017). Printing Fabrication of Bulk Heterojunction Solar Cells and <em>In Situ</em> Morphology Characterization. Journal of Visualized Experiments. 3 indexed citations
15.
Schaible, Eric, et al.. (2016). An Automated, High-Throughput System for GISAXS and GIWAXS measurements of thin films. Bulletin of the American Physical Society. 2016. 1 indexed citations
16.
Acevedo, Claire, Hrishikesh Bale, Bernd Gludovatz, et al.. (2015). Alendronate treatment alters bone tissues at multiple structural levels in healthy canine cortical bone. Bone. 81. 352–363. 60 indexed citations
18.
MacDowell, Alastair A., Dilworth Y. Parkinson, A. Haboub, et al.. (2012). X-ray micro-tomography at the Advanced Light Source. Proceedings of SPIE, the International Society for Optical Engineering/Proceedings of SPIE. 8506. 850618–850618. 67 indexed citations
19.
Zimmermann, Elizabeth A., Eric Schaible, Hrishikesh Bale, et al.. (2011). Age-related changes in the plasticity and toughness of human cortical bone at multiple length scales. Proceedings of the National Academy of Sciences. 108(35). 14416–14421. 314 indexed citations
20.
Barth, Holly D., Elizabeth A. Zimmermann, Eric Schaible, et al.. (2011). Characterization of the effects of x-ray irradiation on the hierarchical structure and mechanical properties of human cortical bone. Biomaterials. 32(34). 8892–8904. 230 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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