| Literature DB >> 28225039 |
R Vinoth1, S Ganesh Babu1, Vishal Bharti2, V Gupta2, M Navaneethan3, S Venkataprasad Bhat1, C Muthamizhchelvan4, Praveen C Ramamurthy5, Chhavi Sharma6, Dinesh K Aswal7, Yasuhiro Hayakawa3, B Neppolian1.
Abstract
A new class of pyridyl benzimdazole basedEntities:
Year: 2017 PMID: 28225039 PMCID: PMC5320515 DOI: 10.1038/srep43133
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Synthesis procedure of rGO/PANI-Ru hybrid nanocomposite.
Figure 2(a) FT-IR spectra of GO, rGO, rGO/PANI and rGO/PANI-Ru and (b) Raman spectra of GO, rGO and rGO/PANI.
Figure 3XPS spectra of rGO/PANI-Ru hybrid nanocomposite (a) wide angle, (b) high resolution C 1 s and Ru 3d, (c) high resolution O 1 s, (d) high resolution N 1 s and (e) high resolution Ru 3p spectra.
Figure 4XRD patterns of graphite, GO, rGO, PANI-Ru and rGO/PANI-Ru.
Figure 5(a) UV-visible absorption spectra of Ru, PANI, rGO, PANI-Ru, rGO/PANI-Ru dispersed in DMF solvent, (b) Absorption spectra of PANI-Ru and rGO/PANI-Ru films and (c) Photograph images of GO, rGO, Ru, PANI, PANI-Ru and rGO/PANI-Ru dispersed in DMF, (d) Photoluminescence emission spectra of PANI-Ru and rGO/PANI-Ru nanocomposites and (e) Transient photocurrent measurements of PANI-Ru and rGO/PANI-Ru nanocomposites.
Figure 6FE-SEM image of (a) GO, (b) rGO, (c) PANI-Ru, (d) rGO/PANI-Ru and (e and f) TEM image of rGO/PANI-Ru nanocomposite with different magnification.
Figure 7(a) Schematic diagram of PSC device fabricated using rGO/PANI-Ru as an electron donor, (b) Energy level diagram of rGO/PANI-Ru in PSC, (c) current density-voltage (J-V) characteristics of PSC device using PANI-Ru and rGO/PANI-Ru nanocomposites as an electron donor and (d and e) Tapping mode AFM image of PANI-Ru:PCBM and rGO/PANI-Ru:PCBM films.
Photovoltaic parameters such as and of the PSC device fabricated with PANI-Ru and rGO/PANI-Ru as an electron donor.
| PANI-Ru | 0.014 | 0.03 | 0.23 | 0.10 (0.09) |
| rGO/PANI-Ru | 0.030 | 0.18 | 0.27 | 1.45 (1.39) |
Average η was calculated based on the data of PSC devices (4 Nos) fabricated under same experimental conditions.
Figure 8Electron transfer mechanism of rGO/PANI-Ru nanocomposite.
Figure 9Transient absorption spectra of (a) PANI-Ru:PCBM and (b) rGO/PANI-Ru:PCBM films.
Decay kinetics of transient absorption for PANI-Ru:PCBM and rGO/PANI-Ru:PCBM at 560 and 690 nm probe wavelengths.
| Photoactive Film | λ (nm) | A1 | τ1 (ps) | A2 | τ2 (ps) | A3 | τ3 (ps) |
|---|---|---|---|---|---|---|---|
| 560 | 0.765 | 0.561 | 0.11 | 11.7 | 0.0558 | 473 | |
| 690 | 0.712 | 0.775 | 0.144 | 14.4 | 0.0565 | 274 | |
| 560 | 0.711 | 0.87 | 0.147 | 13.9 | 0.0561 | 283 | |
| 690 | 0.836 | 0.319 | 0.0864 | 5.92 | 0.0442 | 125 |
Figure 10J-V characteristic curve of PTB7:PCBM used inverted PSC devices.
Photovoltaic parameters such as and of the inverted PSC devices fabricated with different hole transporting layers.
| PEDOT:PSS | 14.16 | 0.717 | 0.503 | 5.1 (4.9) |
| PANI-Ru | 13.72 | 0.741 | 0.600 | 6.1 (5.8) |
| rGO/PANI-Ru | 14.59 | 0.732 | 0.636 | 6.8 (6.6) |