| dc.contributor.author |
KARTIKAY P. |
|
| dc.contributor.author |
SADHUKHAN D. |
|
| dc.contributor.author |
YELLA A. |
|
| dc.contributor.author |
MALLICK S. |
|
| dc.date.accessioned |
2023-03-17T05:25:48Z |
|
| dc.date.available |
2023-03-17T05:25:48Z |
|
| dc.date.issued |
2021 |
|
| dc.identifier.citation |
Solar Energy Materials and Solar Cells,230 |
en_US |
| dc.identifier.issn |
9270248 |
|
| dc.identifier.uri |
https://dx.doi.org/10.1016/j.solmat.2021.111241 |
|
| dc.identifier.uri |
http://localhost:8080/xmlui/handle/100/39851 |
|
| dc.description.abstract |
We report oleylamine functionalized niox (f-niox) and cnt composite (f-niox + cnt) as hole transport material in n-i-p low-temperature processed carbon counter electrode based perovskite solar cells. Oleylamine functionalization improves the dispersibility of niox, but it reduces the conductivity. We demonstrate the addition of a small amount of cnt significantly enhances the conductivity and charge transport properties. The morphological and optoelectrical properties of prepared nanoparticles were evaluated using transmission electron microscopy (tem), scanning electron microscopy (sem), atomic force microscopy (afm), x-ray photoelectron spectroscopy (xps), ultraviolet photoelectron spectroscopy (ups) and uv–vis spectroscopy. The results suggest suitable energy band alignment of f-niox+cnt hole transport material with fa0.83cs0.17pbi2.5br0.5 perovskite absorber layer. Better hole extraction and transport were provided by f-niox + cnt hole transport material, with improved conductivity of 2.73 × 10−2 s cm−1. The fabricated device exhibits 11.36% efficiency with exceptional stability for more than 720 h (retaining ~ 60% of initial efficiency) in ambient without encapsulation. Additionally, we have also demonstrated the perovskite mini-module by connecting two small area cells in series, making the active area of 4 cm2 with 6.11% efficiency. © 2021 elsevier b.v. |
en_US |
| dc.language.iso |
English |
en_US |
| dc.publisher |
Elsevier B.V. |
en_US |
| dc.subject |
HOLE TRANSPORT LAYER |
en_US |
| dc.subject |
LARGE AREA PEROVSKITE SOLAR CELLS |
en_US |
| dc.subject |
LOW-TEMPERATURE CARBON ELECTRODE |
en_US |
| dc.subject |
N-I-P PEROVSKITE SOLAR CELLS |
en_US |
| dc.subject |
STABILITY |
en_US |
| dc.subject.other |
Atomic force microscopy |
en_US |
| dc.subject.other |
Carbon |
en_US |
| dc.subject.other |
Convergence of numerical methods |
en_US |
| dc.subject.other |
Electrodes |
en_US |
| dc.subject.other |
High resolution transmission electron microscopy |
en_US |
| dc.subject.other |
Hole mobility |
en_US |
| dc.subject.other |
Nickel compounds |
en_US |
| dc.subject.other |
Perovskite |
en_US |
| dc.subject.other |
Perovskite solar cells |
en_US |
| dc.subject.other |
Photoelectrons |
en_US |
| dc.subject.other |
Photons |
en_US |
| dc.subject.other |
Scanning electron microscopy |
en_US |
| dc.subject.other |
Ultraviolet photoelectron spectroscopy |
en_US |
| dc.subject.other |
X ray photoelectron spectroscopy |
en_US |
| dc.subject.other |
Carbon counter electrodes |
en_US |
| dc.subject.other |
Carbon-based |
en_US |
| dc.subject.other |
CNTs composites |
en_US |
| dc.subject.other |
Functionalized |
en_US |
| dc.subject.other |
Hole transport layers |
en_US |
| dc.subject.other |
Hole transport materials |
en_US |
| dc.subject.other |
Large area perovskite solar cell |
en_US |
| dc.subject.other |
Low-temperature carbon electrode |
en_US |
| dc.subject.other |
Lows-temperatures |
en_US |
| dc.subject.other |
N-i-p perovskite solar cell |
en_US |
| dc.subject.other |
Temperature |
en_US |
| dc.title |
Enhanced charge transport in low temperature carbon-based n-i-p perovskite solar cells with NiOx-CNT hole transport material |
en_US |
| dc.type |
Article |
en_US |