Micaela Crespo‐Quesada

2.6k total citations · 1 hit paper
20 papers, 2.4k citations indexed

About

Micaela Crespo‐Quesada is a scholar working on Materials Chemistry, Organic Chemistry and Biomedical Engineering. According to data from OpenAlex, Micaela Crespo‐Quesada has authored 20 papers receiving a total of 2.4k indexed citations (citations by other indexed papers that have themselves been cited), including 12 papers in Materials Chemistry, 10 papers in Organic Chemistry and 8 papers in Biomedical Engineering. Recurrent topics in Micaela Crespo‐Quesada's work include Nanomaterials for catalytic reactions (10 papers), Catalytic Processes in Materials Science (8 papers) and Copper-based nanomaterials and applications (5 papers). Micaela Crespo‐Quesada is often cited by papers focused on Nanomaterials for catalytic reactions (10 papers), Catalytic Processes in Materials Science (8 papers) and Copper-based nanomaterials and applications (5 papers). Micaela Crespo‐Quesada collaborates with scholars based in Switzerland, United Kingdom and United States. Micaela Crespo‐Quesada's co-authors include Lioubov Kiwi‐Minsker, Artur Yarulin, Younan Xia, Richard H. Friend, Fernando Cárdenas‐Lizana, Mingshang Jin, Luis Pazos, Erwin Reisner, Milan Vrućinić and Bruno Ehrler and has published in prestigious journals such as Science, Journal of the American Chemical Society and Nature Communications.

In The Last Decade

Micaela Crespo‐Quesada

19 papers receiving 2.3k citations

Hit Papers

Photon recycling in lead iodide perovskite solar cells 2016 2026 2019 2022 2016 100 200 300 400 500

Peers

Micaela Crespo‐Quesada
Micaela Crespo‐Quesada
Citations per year, relative to Micaela Crespo‐Quesada Micaela Crespo‐Quesada (= 1×) peers Andrzej Borodziński

Countries citing papers authored by Micaela Crespo‐Quesada

Since Specialization
Citations

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

Fields of papers citing papers by Micaela Crespo‐Quesada

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by Micaela Crespo‐Quesada. 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 Micaela Crespo‐Quesada. The network helps show where Micaela Crespo‐Quesada may publish in the future.

Co-authorship network of co-authors of Micaela Crespo‐Quesada

This figure shows the co-authorship network connecting the top 25 collaborators of Micaela Crespo‐Quesada. A scholar is included among the top collaborators of Micaela Crespo‐Quesada 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 Micaela Crespo‐Quesada. Micaela Crespo‐Quesada 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.
Andrei, Virgil, Robert L. Z. Hoye, Micaela Crespo‐Quesada, et al.. (2018). Scalable Triple Cation Mixed Halide Perovskite–BiVO4 Tandems for Bias‐Free Water Splitting. Advanced Energy Materials. 8(25). 154 indexed citations
2.
Crespo‐Quesada, Micaela & Erwin Reisner. (2017). Emerging approaches to stabilise photocorrodible electrodes and catalysts for solar fuel applications. Energy & Environmental Science. 10(5). 1116–1127. 40 indexed citations
3.
Crespo‐Quesada, Micaela, Luis Pazos, Julien Warnan, et al.. (2016). Metal-encapsulated organolead halide perovskite photocathode for solar-driven hydrogen evolution in water. Nature Communications. 7(1). 12555–12555. 178 indexed citations
4.
Живонитко, Владимир В., Ivan V. Skovpin, Micaela Crespo‐Quesada, Lioubov Kiwi‐Minsker, & Igor V. Koptyug. (2016). Acetylene Oligomerization over Pd Nanoparticles with Controlled Shape: A Parahydrogen-Induced Polarization Study. The Journal of Physical Chemistry C. 120(9). 4945–4953. 33 indexed citations
5.
Pazos, Luis, Robin Lamboll, Johannes M. Richter, et al.. (2016). Photon recycling in lead iodide perovskite solar cells. Science. 351(6280). 1430–1433. 597 indexed citations breakdown →
6.
Pazos, Luis, Robin Lamboll, Johannes M. Richter, et al.. (2016). Photon recycling in Lead-Iodide Perovskite solar cells(Conference Presentation). 16–16.
7.
Crespo‐Quesada, Micaela, Songhak Yoon, Mingshang Jin, et al.. (2014). Shape-Dependence of Pd Nanocrystal Carburization during Acetylene Hydrogenation. The Journal of Physical Chemistry C. 119(2). 1101–1107. 43 indexed citations
8.
Crespo‐Quesada, Micaela, Songhak Yoon, Mingshang Jin, et al.. (2014). Size and Shape‐controlled Pd Nanocrystals on ZnO and SiO2: When the Nature of the Support Determines the Active Phase. ChemCatChem. 6(3). 767–771. 19 indexed citations
9.
Prestianni, Antonio, et al.. (2014). Structure Sensitivity of 2-Methyl-3-butyn-2-ol Hydrogenation on Pd: Computational and Experimental Modeling. The Journal of Physical Chemistry C. 118(6). 3119–3128. 30 indexed citations
10.
Cárdenas‐Lizana, Fernando, Yufen Hao, Micaela Crespo‐Quesada, et al.. (2013). Selective Gas Phase Hydrogenation ofp-Chloronitrobenzene over Pd Catalysts: Role of the Support. ACS Catalysis. 3(6). 1386–1396. 121 indexed citations
11.
Yarulin, Artur, et al.. (2012). Structure sensitivity of selective acetylene hydrogenation over the catalysts with shape-controlled palladium nanoparticles. Kinetics and Catalysis. 53(2). 253–261. 61 indexed citations
12.
Kiwi‐Minsker, Lioubov & Micaela Crespo‐Quesada. (2012). Shape and Size-Tailored Pd Nanocrystals to Study the Structure Sensitivity of 2-Methyl-3-butyn-2-ol Hydrogenation: Effect of the Stabilizing Agent. Topics in Catalysis. 55(7-10). 486–491. 10 indexed citations
13.
Cárdenas‐Lizana, Fernando, Micaela Crespo‐Quesada, & Lioubov Kiwi‐Minsker. (2012). Selective Alkyne Hydrogenation over Nano-metal Systems: Closing the Gap between Model and Real Catalysts for Industrial Applications. CHIMIA International Journal for Chemistry. 66(9). 681–681. 6 indexed citations
14.
Crespo‐Quesada, Micaela, et al.. (2012). Modern Trends in Catalyst and Process Design for Alkyne Hydrogenations. ACS Catalysis. 2(8). 1773–1786. 270 indexed citations
15.
16.
Crespo‐Quesada, Micaela, R.R. Dykeman, Gábor Laurenczy, Paul J. Dyson, & Lioubov Kiwi‐Minsker. (2011). Supported nitrogen-modified Pd nanoparticles for the selective hydrogenation of 1-hexyne. Journal of Catalysis. 279(1). 66–74. 55 indexed citations
17.
Kiwi‐Minsker, Lioubov & Micaela Crespo‐Quesada. (2011). Integrated Approach for the Intensification of Heterogeneous Catalytic Processes. CHIMIA International Journal for Chemistry. 65(9). 699–699. 9 indexed citations
18.
Crespo‐Quesada, Micaela, Artur Yarulin, Mingshang Jin, Younan Xia, & Lioubov Kiwi‐Minsker. (2011). Structure Sensitivity of Alkynol Hydrogenation on Shape- and Size-Controlled Palladium Nanocrystals: Which Sites Are Most Active and Selective?. Journal of the American Chemical Society. 133(32). 12787–12794. 385 indexed citations
19.
Crespo‐Quesada, Micaela, Martin Grasemann, Natalia Semagina, Albert Renken, & Lioubov Kiwi‐Minsker. (2008). Kinetics of the solvent-free hydrogenation of 2-methyl-3-butyn-2-ol over a structured Pd-based catalyst. Catalysis Today. 147(3-4). 247–254. 62 indexed citations
20.
Yang, Xue, Ning Yan, Zhaofu Fei, et al.. (2008). Biphasic Hydrogenation over PVP Stabilized Rh Nanoparticles in Hydroxyl Functionalized Ionic Liquids. Inorganic Chemistry. 47(17). 7444–7446. 86 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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