Tailoring Cu+ for Ga3+ Cation Exchange in Cu2- xS and CuInS2 Nanocrystals by Controlling the Ga Precursor Chemistry

Publication date

2019-11-26

Authors

Hinterding, S.O.M.ISNI 0000000492529306
Berends, A.C.ORCID 0000-0003-4249-2843ISNI 0000000492512213
Kurttepeli, Mert
Moret, Marc-EtienneORCID 0000-0002-3137-6073ISNI 0000000436414547
Meeldijk, Johannes DISNI 0000000419468594
Bals, Sara
van der Stam, WardISNI 0000000443863316
de Mello-Donega, CelsoISNI 0000000390738326

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Abstract

Nanoscale cation exchange (CE) has resulted in colloidal nanomaterials that are unattainable by direct synthesis methods. Aliovalent CE is complex and synthetically challenging because the exchange of an unequal number of host and guest cations is required to maintain charge balance. An approach to control aliovalent CE reactions is the use of a single reactant to both supply the guest cation and extract the host cation. Here, we study the application of GaCl3-L complexes [L = trioctylphosphine (TOP), triphenylphosphite (TPP), diphenylphosphine (DPP)] as reactants in the exchange of Cu+ for Ga3+ in Cu2-xS nanocrystals. We find that noncomplexed GaCl3 etches the nanocrystals by S2- extraction, whereas GaCl3-TOP is unreactive. Successful exchange of Cu+ for Ga3+ is only possible when GaCl3 is complexed with either TPP or DPP. This is attributed to the pivotal role of the Cu2-xS-GaCl3-L activated complex that forms at the surface of the nanocrystal at the onset of the CE reaction, which must be such that simultaneous Ga3+ insertion and Cu+ extraction can occur. This requisite is only met if GaCl3 is bound to a phosphine ligand, with a moderate bond strength, to allow facile dissociation of the complex at the nanocrystal surface. The general validity of this mechanism is demonstrated by using GaCl3-DPP to convert CuInS2 into (Cu,Ga,In)S2 nanocrystals, which increases the photoluminescence quantum yield 10-fold, while blue-shifting the photoluminescence into the NIR biological window. This highlights the general applicability of the mechanistic insights provided by our work.

Keywords

cation exchange, copper gallium sulfide, copper indium gallium sulfide, copper indium sulfide, copper sulfide, semiconductor nanocrystals, General Materials Science, General Engineering, General Physics and Astronomy

Citation

Hinterding, S O M, Berends, A C, Kurttepeli, M, Moret, M E, Meeldijk, J D, Bals, S, Van Der Stam, W & De Mello Donega, C 2019, 'Tailoring Cu + for Ga 3+ Cation Exchange in Cu 2- x S and CuInS 2 Nanocrystals by Controlling the Ga Precursor Chemistry', ACS Nano, vol. 13, no. 11, pp. 12880-12893. https://doi.org/10.1021/acsnano.9b05337