| Literature DB >> 30713622 |
Nils Põldme1, Laura O'Reilly2, Ian Fletcher3, Jose Portoles3, Igor V Sazanovich4, Michael Towrie4, Conor Long2, Johannes G Vos2, Mary T Pryce2, Elizabeth A Gibson1.
Abstract
A new approach to increasing the faradaic efficiency of dye-sensitised photocathodes forEntities:
Year: 2018 PMID: 30713622 PMCID: PMC6333170 DOI: 10.1039/c8sc02575d
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Fig. 1The structures of the dye-catalyst assemblies 1 and 2 (R = CO2Et).
Fig. 2UV-vis absorption spectra of 1 (red) and 2 (black) adsorbed on NiO and bare NiO (gray). Inset: UV-vis absorption spectra of 1 (red) and 2 (black) in MeCN (0.028 mM and 0.032 mM, respectively).
Fig. 3Transient absorption spectra (top, 1 ps) and kinetic traces (bottom) for 1 (red) and 2 (light blue) in CD3CN and 1|NiO (yellow) and 2|NiO (dark blue) following excitation (λ = 470 nm) probed at 490 nm (bleach, open symbols) and 620 nm (transient, filled symbols). On the bottom figure, the rings represent data points and the lines are the exponential fit to the data.
Fig. 4TRIR Spectra (top, 1 ps) and kinetic traces (bottom) for 1 (red) and 2 (light blue) in CD3CN and 1|NiO (yellow) and 2|NiO (dark blue) following excitation (λ = 470 nm). On the bottom figure, the symbols represent data points (open = bleach, filled = transient absorption) and the lines are the exponential fit to the data.
Fig. 5A photophysical model for the excitation of [Ru(dmcb)2(bpt)PdCl(H2O)](PF6)2 into its lowest energy optically accessible singlet excited state (8th excited state, corresponding to a photon energy of 484 nm in water, black lines) followed by inter system crossing (ISC) to the triplet surface (red lines) and internal conversion to the triplet surface; the singlet state energy at the triplet geometry is indicated by ST. Vertical excitation to the lowest energy optically accessible state is indicated as the blue arrow, and the electron density difference maps or selected states are also presented to either side of the energy level.
Fig. 6Linear sweep voltammograms of 1|NiO and 2|NiO immersed in aqueous 0.1 M KCl electrolyte (pH 3). The potential was swept from Eappl = 0 to –0.6 V vs. Ag/AgCl (3.0 M NaCl) in the dark and under simulated light illumination (AM1.5, 100 mW cm–2).
Fig. 7Chronoamperometry measurements of 1|NiO (a) and 2|NiO (b) immersed in pH 3 buffer containing 0.1 M potassium hydrogen phthalate. Eappl = –0.2 V, –0.4 V and –0.6 V vs. Ag/AgCl (3.0 M NaCl). Chopped light illumination was applied with 30 s intervals (10 cycles of dark current/photocurrent).
Fig. 8Cumulative photoelectrocatalytic H2 production by 1|NiO and 2|NiO during the chronoamperometry measurements at different Eappl (Fig. 7 and S3 in the ESI†). Chopped light illumination was applied during the first 10 min followed by constant light illumination until the end of the measurement (AM1.5, 100 mW cm–2).
Photocurrent, faradaic efficiencies and H2 production during photoelectrocatalysis of 1|NiO and 2|NiO under AM1.5 illumination (100 mW cm–2)
|
|
| |||||
|
| –0.2 | –0.4 | –0.6 | –0.2 | –0.4 | –0.6 |
|
| 34.8 ± 1.4 | 31.2 ± 8.7 | 12.3 ± 1.9 | 31.8 ± 6.2 | 47.6 ± 7.5 | 43.7 ± 27.1 |
|
| 35.6 ± 1.8 | 34.2 ± 9.4 | 88.2 ± 4.9 | 33.2 ± 7.1 | 52.5 ± 12.0 | 114.7 ± 37.6 |
|
| 97.8 | 91.2 | 14 | 95.8 | 90.7 | 38.1 |
|
| 88.6 | 67.5 | 32.3* | 59.1 | 56.9 | 44.4* |
| [H2]/μmol h–1 cm–2 | 0.41 | 0.28 | 0.37 | 0.25 | 0.36 | 0.78 |
| TON | 46 | 31 | 41 | 47 | 68 | 147 |
J photo is the average photocurrent, Jtotal is the photocurrent plus dark current, Pphoto is the percentage of photocurrent of the total current and ηFar is the faradaic efficiency of H2 production. ηFar was calculated using Jphoto in case of Eappl = –0.2 V and Eappl = –0.4 V. *ηFar was calculated from the overall charge passed during the measurement (dark and photocurrent) in case of Eappl = –0.6 V vs. Ag/AgCl. TON calculated from the dye-loading (mol cm–2) and the [H2] over 1 hour.
Fig. 10Pd 3d XPS spectrum of 1|NiO (a) before photoelectrocatalysis, after photoelectrocatalysis under (b) Eappl = –0.4 V and (c) Eappl = –0.6 V; Pt 4f XPS spectrum of 2|NiO (d) before photoelectrocatalysis, after photoelectrocatalysis under (e) Eappl = –0.4 V and (f) Eappl = –0.6 V vs. Ag/AgCl.
Fig. 9ToF-SIMS positive ion spectra of 1|NiO taken from three different samples: top: – pre-catalysis, middle: post-catalysis at –0.4 V vs. Ag/AgCl and bottom: post-catalysis –0.6 V vs. Ag/AgCl. 1020–1140 mass per unit range. Assignments are as follows: L1a – [Ru(decb)2(bpt)PdCl]2+ calcd. m = 1065, L1b – [Ru(decb)2(bpt)Pd]3+ calcd. m = 1030, L1c – [Ru(decb)2(bpt)PdCl(H2O)2]2+ calcd. m = 1101, L1d – [Ru(decb)2(bpt)Pd(CH3CN)]3+ calcd. m = 1071, L1e – [Ru(decb)2(bpt)PdCl(H2O)3]2+ calcd. m = 1119.
Fig. 11Possible excited state configurations of 1 (red) and 2 (blue) when immobilised on NiO based on the TA and TRIR experiments, DFT and TD-DFT calculations in this work and models proposed in ref. 21, 24, 25 and 28. BL = bridging ligand, bpy = bipyridyl, M = Pt or Pd, CS = charge-separated state.