Elimination of interface energy barriers using dendrimer polyelectrolytes with fractal geometry

dc.contributor.author
Ros Costals, Eloi
dc.contributor.author
Tom, Thomas
dc.contributor.author
Ortega Villasclaras, Pablo Rafael
dc.contributor.author
Martin Garcia, Isidro
dc.contributor.author
Maggi, E.
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Asensi López, José Miguel
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López Vidrier, Julià
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Saucedo Silva, Edgardo
dc.contributor.author
Bertomeu i Balagueró, Joan
dc.contributor.author
Puigdollers i González, Joaquim
dc.contributor.author
Voz Sánchez, Cristóbal
dc.date.issued
2023-06-23T16:29:39Z
dc.date.issued
2024-06-03T05:10:13Z
dc.date.issued
2023-06-03
dc.date.issued
2023-06-23T16:29:39Z
dc.identifier
1944-8244
dc.identifier
https://hdl.handle.net/2445/199765
dc.identifier
734887
dc.description.abstract
In this work we study conjugated polyelectrolyte (CPE) films based on polyamidoamine (PAMAM) dendrimers of generations G1 and G3. These fractal macromolecules are compared to branched polyethylenimine (b-PEI) polymer using methanol as the solvent. All of these materials present a high density of amino groups, which protonated by methoxide counter-anions create strong dipolar interfaces. The vacuum level shift associated to these films on n-type silicon was 0.93 eV for b-PEI, 0.72 eV for PAMAM G1 and 1.07 eV for PAMAM G3. These surface potentials were enough to overcome Fermi level pinning, which is a typical limitation of aluminium contacts on n-type silicon. A specific contact resistance as low as 20 mΩ·cm<sup>2</sup> was achieved with PAMAM G3, in agreement with the higher surface potential of this material. Good electron transport properties were also obtained for the other materials. Proof-of-concept silicon solar cells combining vanadium oxide as a hole-selective contact with these new electron transport layers have been fabricated and compared. The solar cell with PAMAM G3 surpassed 15% conversion efficiency with an overall increase of all the photovoltaic parameters. The performance of these devices correlates with compositional and nanostructural studies of the different CPE films. Particularly, a figure-of-merit (V<sub>σ</sub>) for CPE films that considers the number of protonated amino groups per macromolecule has been introduced. The fractal geometry of dendrimers leads to a geometric increase in the number of amino groups per generation. Thus, investigation of dendrimer macromolecules seems a very good strategy to design CPE films with enhanced charge-carrier selectivity.
dc.format
11 p.
dc.format
application/pdf
dc.language
eng
dc.publisher
American Chemical Society
dc.relation
Versió postprint del document publicat a: https://doi.org/10.1021/acsami.3c01930
dc.relation
ACS Applied Materials & Interfaces, 2023, vol. 15, num. 23, p. 28705-28715
dc.relation
https://doi.org/10.1021/acsami.3c01930
dc.rights
(c) American Chemical Society , 2023
dc.rights
info:eu-repo/semantics/openAccess
dc.source
Articles publicats en revistes (Física Aplicada)
dc.subject
Silici
dc.subject
Cèl·lules solars
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Polielectròlits
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Silicon
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Solar cells
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Polyelectrolytes
dc.title
Elimination of interface energy barriers using dendrimer polyelectrolytes with fractal geometry
dc.type
info:eu-repo/semantics/article
dc.type
info:eu-repo/semantics/acceptedVersion


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