Literature DB >> 36131832

Solvent composition regulates the Se : Sb ratio in antimony selenide nanowires deposited from thiol-amine solvent mixtures.

A Vashishtha1, O Vana1, E Edri1,2,3.   

Abstract

Antimony selenide (Sb2Se3), a V2VI3 semiconductor with an intriguing crystal structure, has demonstrated improved power conversion and solar-to-hydrogen efficiencies in recent years. Depositing antimony selenide nanowires (NWs) from a solution such as a thiol : amine "alkahest" ink is a low-cost and facile route to deposit high surface area photocathodes. However, little is known about the correlations between the solvent composition and the crystallites' structure and optoelectronic properties, which are crucial for photovoltaic and photoelectrochemical applications. We found that the Se : Sb ratio in the NWs decreases from 3 : 2 to less than 1 : 1 with decreasing thiol : amine ratio in the ink used for deposition but not in the solvent mixture used for dissolving the metals. The reduced Se : Sb ratio in the solid NWS correlates with an optical bandgap wider by ∼0.3 eV in comparison to stoichiometric NWs, a decrease of the NWs diameter from 180 to 30 nanometers, and a ∼0.2 eV larger work function. In addition, we found that the Se : Sb ratio is not uniform along the NWs, which causes a surface potential increase near the tips of the NWs due to a lower Se : Sb ratio near the NWs tips. The increased surface potential near the tips corresponds to a driving force, due to doping or graded bandgap broadening, that facilitates the migration of photoexcited electrons towards the NW tips. Our findings unlock a path for fine-tuning the optoelectronic properties of antimony selenide towards improving the performance of antimony selenide solar cells and photocathodes. This journal is © The Royal Society of Chemistry.

Entities:  

Year:  2021        PMID: 36131832      PMCID: PMC9419773          DOI: 10.1039/d1na00814e

Source DB:  PubMed          Journal:  Nanoscale Adv        ISSN: 2516-0230


  18 in total

1.  Alkahest for V2VI3 chalcogenides: dissolution of nine bulk semiconductors in a diamine-dithiol solvent mixture.

Authors:  David H Webber; Richard L Brutchey
Journal:  J Am Chem Soc       Date:  2013-10-15       Impact factor: 15.419

2.  Solution-Phase Conversion of Bulk Metal Oxides to Metal Chalcogenides Using a Simple Thiol-Amine Solvent Mixture.

Authors:  Carrie L McCarthy; David H Webber; Emily C Schueller; Richard L Brutchey
Journal:  Angew Chem Int Ed Engl       Date:  2015-06-02       Impact factor: 15.336

3.  Electrodeposition of antimony selenide thin films and application in semiconductor sensitized solar cells.

Authors:  T Tuyen Ngo; Sudam Chavhan; Ivet Kosta; Oscar Miguel; Hans-Jurgen Grande; Ramón Tena-Zaera
Journal:  ACS Appl Mater Interfaces       Date:  2014-01-27       Impact factor: 9.229

4.  Analyzing and Tuning the Chalcogen-Amine-Thiol Complexes for Tailoring of Chalcogenide Syntheses.

Authors:  Swapnil D Deshmukh; Leah F Easterling; Jeremy M Manheim; Nicole J LiBretto; Kyle G Weideman; Jeffrey T Miller; Hilkka I Kenttämaa; Rakesh Agrawal
Journal:  Inorg Chem       Date:  2020-05-22       Impact factor: 5.165

5.  Strain-induced indirect to direct bandgap transition in multilayer WSe2.

Authors:  Sujay B Desai; Gyungseon Seol; Jeong Seuk Kang; Hui Fang; Corsin Battaglia; Rehan Kapadia; Joel W Ager; Jing Guo; Ali Javey
Journal:  Nano Lett       Date:  2014-07-07       Impact factor: 11.189

6.  Cosolvent approach for solution-processable electronic thin films.

Authors:  Zhaoyang Lin; Qiyuan He; Anxiang Yin; Yuxi Xu; Chen Wang; Mengning Ding; Hung-Chieh Cheng; Benjamin Papandrea; Yu Huang; Xiangfeng Duan
Journal:  ACS Nano       Date:  2015-04-13       Impact factor: 15.881

7.  Solution processing of chalcogenide materials using thiol-amine "alkahest" solvent systems.

Authors:  Carrie L McCarthy; Richard L Brutchey
Journal:  Chem Commun (Camb)       Date:  2017-05-02       Impact factor: 6.222

8.  Simple colloidal synthesis of single-crystal Sb-Se-S nanotubes with composition dependent band-gap energy in the near-infrared.

Authors:  Zhengtao Deng; Masud Mansuripur; Anthony J Muscat
Journal:  Nano Lett       Date:  2009-05       Impact factor: 11.189

9.  Hydrazine solution processed Sb2S3, Sb2Se3 and Sb2(S(1-x)Se(x))3 film: molecular precursor identification, film fabrication and band gap tuning.

Authors:  Bo Yang; Ding-Jiang Xue; Meiying Leng; Jie Zhong; Liang Wang; Huaibing Song; Ying Zhou; Jiang Tang
Journal:  Sci Rep       Date:  2015-06-04       Impact factor: 4.379

10.  Resonant Ta Doping for Enhanced Mobility in Transparent Conducting SnO2.

Authors:  Benjamin A D Williamson; Thomas J Featherstone; Sanjayan S Sathasivam; Jack E N Swallow; Huw Shiel; Leanne A H Jones; Matthew J Smiles; Anna Regoutz; Tien-Lin Lee; Xueming Xia; Christopher Blackman; Pardeep K Thakur; Claire J Carmalt; Ivan P Parkin; Tim D Veal; David O Scanlon
Journal:  Chem Mater       Date:  2020-02-18       Impact factor: 9.811

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