| Literature DB >> 27408826 |
Sai Kiran Aditha1, Aditya Dileep Kurdekar1, L A Avinash Chunduri1, Sandeep Patnaik1, Venkataramaniah Kamisetti1.
Abstract
The aqueous based reflux method useful for the green synthesis of nanostructures is described in detail. In this method, the parameters: the order of addition of precursors, the time of the reflux and the cooling rate should be optimized in order to obtain the desired phase and morphology of the nanostructures. The application of this method is discussed with reference to the synthesis of CZTS nanoparticles which have great potential as an absorber material in the photovoltaic devices. The highlights of this method are:•Simple.•Low cost.•Aqueous based.Entities:
Keywords: Aqueous method; CZTS; Green synthesis; Nanostructures; Photovoltaics; Reflux
Year: 2015 PMID: 27408826 PMCID: PMC4929250 DOI: 10.1016/j.mex.2015.12.003
Source DB: PubMed Journal: MethodsX ISSN: 2215-0161
Table showing the raw material cost per watt of leading solar cell technologies.
| S. no. | Compound | Raw material cost (/ |
|---|---|---|
| 1. | CZTS | 4.9E−3 |
| 2. | CdSe | 1.2E−2 |
| 3. | CIGS | 2.3E−2 |
| 4. | CdTe | 9.7E−2 |
| 5. | InP | 2.3E−1 |
| 6. | GaAs | 2.5E−1 |
Fig. 1Schematic of reflux setup.
Fig. 2XRD pattern of the as synthesized CZTS sample.
Fig. 3Raman spectrum of the as synthesized sample.
Fig. 4(a) UV–Vis spectrum of the as synthesized sample. (b) Tauc plot showing the band gap.
Elemental ratios obtained from the EDX results.
| Element | Atomic% | Weight % |
|---|---|---|
| S K | 54.96 | 33.12 |
| Cu L | 21.67 | 25.93 |
| Zn L | 11.25 | 13.93 |
| Sn L | 12.12 | 27.02 |
| Totals | 100.00 | 100.00 |
Fig. 5SEM of the as synthesized CZTS sample.
Fig. 6EDX pattern of the as synthesized CZTS sample.