mesoporous tio2
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2022 ◽  
Vol 429 ◽  
pp. 132507
Author(s):  
Tao Xie ◽  
Zhen-Yu Zhang ◽  
Hao-Ye Zheng ◽  
Kai-Di Xu ◽  
Zhun Hu ◽  
...  

Author(s):  
Darliane CS Souza ◽  
Suélen M Amorim ◽  
Rafael D Cadamuro ◽  
Gislaine Fongaro ◽  
Rosely A Peralta ◽  
...  

Chemosensors ◽  
2021 ◽  
Vol 9 (12) ◽  
pp. 329
Author(s):  
David Ortiz de Zárate ◽  
Sara Serna ◽  
Salvador Ponce-Alcántara ◽  
Miroslavna Kovylina ◽  
Jaime García-Rupérez

Many optical sensors exploit the interesting properties of porous materials, as they ensure a stronger interaction between the light and the analyte directly within the optical structure. Most porous optical sensors are mainly based on porous silicon and anodized aluminum oxide, showing high sensitivities. However, the top-down strategies usually employed to produce those materials might offer a limited control over the properties of the porous layer, which could affect the homogeneity, reducing the sensor reproducibility. In this work, we present the bottom-up synthesis of mesoporous TiO2 Fabry-Pérot optical sensors displaying high sensitivity, high homogeneity, and low production cost, making this platform a very promising candidate for the development of high-performance optical sensors.


2021 ◽  
Vol 22 (22) ◽  
pp. 12235
Author(s):  
Hwa-Young Yang ◽  
Ana Chuquer ◽  
Seung-Hee Han ◽  
Gangasagar Sharma Gaudel ◽  
Xuan-Hung Pham ◽  
...  

The energy conversion efficiency (ECE) (η), current density (Jsc), open-circuit voltage (Voc), and fill factor (ff) of perovskite solar cells were studied by using the transmittance of a nanopatterned mesoporous TiO2 (mp-TiO2) thin-film layer. To improve the ECE of perovskite solar cells, a mp-TiO2 thin-film layer was prepared to be used as an electron transport layer (ETL) via the nanoimprinting method for nanopatterning, which was controlled by the aspect ratio. The nanopatterned mp-TiO2 thin-film layer had a uniform and well-designed structure, and the diameter of nanopatterning was 280 nm. The aspect ratio was controlled at the depths of 75, 97, 127, and 167 nm, and the perovskite solar cell was fabricated with different depths. The ECE of the perovskite solar cells with the nanopatterned mp-TiO2 thin-film layer was 14.50%, 15.30%, 15.83%, or 14.24%, which is higher than that of a non-nanopatterned mp-TiO2 thin-film layer (14.07%). The enhancement of ECE was attributed to the transmittance of the nanopatterned mp-TiO2 thin-film layer that is due to the improvement of the electron generation. As a result, better electron generation affected the electron density, and Jsc increased the Voc, and ff of perovskite solar cells.


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