| Literature DB >> 27991517 |
Rinu Abraham Maniyara1, Vahagn K Mkhitaryan1, Tong Lai Chen1, Dhriti Sundar Ghosh1, Valerio Pruneri1,2.
Abstract
Transparent conductors are essential in many optoelectronic devices, such as displays, smart windows, light-emitting diodes and solar cells. Here we demonstrate a transparent conductor with optical loss of ∼1.6%, that is, even lower than that of single-layer graphene (2.3%), and transmission higher than 98% over the visible wavelength range. This was possible by an optimized antireflection design consisting in applying Al-doped ZnO and TiO2 layers with precise thicknesses to a highly conductive Ag ultrathin film. The proposed multilayer structure also possesses a low electrical resistance (5.75 Ω sq-1), a figure of merit four times larger than that of indium tin oxide, the most widely used transparent conductor today, and, contrary to it, is mechanically flexible and room temperature deposited. To assess the application potentials, transparent shielding of radiofrequency and microwave interference signals with ∼30 dB attenuation up to 18 GHz was achieved.Entities:
Year: 2016 PMID: 27991517 PMCID: PMC5187436 DOI: 10.1038/ncomms13771
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Figure 1Structure and modelling of AR-TC electrode.
(a) Structure of AR-TC. (b) Conceptual diagram showing multiple reflection contributions leading to destructive interference and AR effect. Simulated (c) transmission, (d) reflection and (e) absorption of AR-TC for different TiO2 and AZO thicknesses. For all the structures, the Ag film thickness is kept constant at 12 nm. The transmission, reflection and absorption include the substrate contribution, that is, they refer to the whole TC on substrate structure, and are average values over 400–700 nm wavelength range.
Figure 2Optical performance of AR-TC electrode.
Experimental average values of (a) transmission (TAVE) and (b) reflection (RAVE) over the visible wavelength range (400–700 nm) of the proposed AR-TC, for varying thickness of TiO2 and AZO (25 different samples were prepared and measured. Each square corresponds to a sample with the oxide thickness indicated). Wavelength dependent (c) transmission and (d) reflection of optimal AR-TC (AR-TC1 and AR-TC2) compared with bare fused SiO2 substrate, single-layer graphene and commercial ITO. Measured values include substrate contribution and two side reflections. The dashed line in c corresponds to the transmission of AR-TC1 without the substrate contribution, that is, the ratio between the AR-TC1 transmission and glass substrate transmission (continuous lines). The average TC transmission is calculated to be 98.33%.
Figure 3Single-side angular-dependent reflection performance of AR-TC electrode.
(a) Simulated angle-dependent R of AR-TC 1 for varying angle of incidence. Experimental angle-dependent one surface R of (b) AR-TC 1, (c) AR-TC 2 and (d) commercial ITO for incidence angles of 6°, 25°, 50° and 70°. Inset of b: scheme of one-side reflection measurement obtained by index matching a completely absorbing material (black glass) to the back surface.
AR-TC performance comparison with other works.
| Reference | Structure | Transmission (%) at 550 nm | Sheet resistance (Ω sq−1) | Haacke FoM ( × 10−3 Ω−1) | |
|---|---|---|---|---|---|
| This work | TiO2/Ag/AZO | 91.6 | 5.75 | 72.3 | 730.0 |
| Cu2O/Cu/Cu2O mesh | 88.1 | 15.1 | 18.6 | 189.0 | |
| TiO2/Ag/ITO | 88.6 | 6.20 | 48.5 | 497.8 | |
| Dip-coated AgNw | 89.9 | 10.2 | 34.0 | 339.0 | |
| ZnO/AgNw/AZO/ZnO | 87.3 | 11.3 | 22.8 | 237.5 | |
| Graphene–metallic grid hybrid | 90.0 | 20.0 | 17.4 | 173.9 | |
| Cu nanowire | 90.0 | 25.0 | 13.9 | 139.1 | |
| Polymer–metal hybrid | 89.4 | 10.0 | 32.6 | 327.0 | |
| ZTO/Ag/ZTO | 83.2 | 8.8 | 18.0 | 222.2 | |
| Capillary printed AgNW | 90.4 | 19.4 | 18.8 | 175.1 | |
| Doped single-layer graphene | 86.4 | 325 | 0.71 | 7.69 | |
| Commercial ITO | 86.6 | 14.0 | 16.9 | 180.1 |
σDC, direct current conductivity; σOP, optical conductivity; Ag, silver; AgNw, silver nanowire; AR, antireflection; AZO, aluminium zinc oxide; Cu2O, copper oxide; Cu, copper; FoM, figure of merit; ITO, indium tin oxide; TC, transparent conductor; TiO2, titanium oxide; ZnO, zinc oxide; ZTO, zinc tin oxide.
FoMs are re-calculated for transmission at 550 nm and including substrate contribution, this being made of fused silica. FoM of different TCs compared with AR-TC. Both Haacke and DC to optical conductivity ratio FoMs are used.
Figure 4EMI shielding application of AR-TC electrode.
(a) Scheme of EMI SE measurement setup with enclosure, transmitting and receiving antenna. (b) SE (attenuation) for AR-TC with Rs of ∼7 Ω sq−1 in 1–2.8 GHz and (c) 2.8–18 GHz. The error bars represent the difference between measured data and their average calculated using Fast Fourier Transform filtering. (d) SE as a function of sheet resistance (Rs).