tin oxides
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2022 ◽  
Vol 334 ◽  
pp. 03001
Author(s):  
Sofia Delgado ◽  
Paranjeet Lakhtaria ◽  
Eva Sousa ◽  
Tiago Lagarteira ◽  
K.A. Friedrich ◽  
...  

Iridium oxide is the preferred catalyst for water oxidation but it is required to maximize its utilization to deploy Proton Exchange Membrane Water Electrolyzers (PEMWEs) into the large-scale applications panorama. A promising pathway for dispersing this precious catalyst is on an electric conductive and stable support. However, there is a lack of understanding how the support-catalyst interactions affect the stability/activity of the electrocatalyst under anodic conditions. This work discloses a modified, easy-scalable, polyol synthesis protocol to produce a highly active and stable iridium-based catalyst, supported on metal-doped tin oxides. The loading of Ir was reduced 30 wt.% compared to the reference IrO2, and dispersed on Sb-SnO2 (IrOx/ATO), In-SnO2 (IrOx/ITO) and SnO2 supports. All synthesized electrocatalysts not only surpassed the OER-mass activity of a commercial catalyst (IrO2) – reference – but also reached higher electrochemical active surface areas and enhanced stability under the OER conditions. The highest performance was achieved with Ir NPs supported on ITO (176 A/gIr vs. 15.5 A/gIr for the reference catalyst @ 1.51 V vs. RHE) and both IrOx/ITO and IrOx/SnO2 catalysts demonstrated remarkable stability after cycling the electrode and performing long-term chronopotentiometry. ITO is, therefore, an auspicious support to serve Ir-based catalysts as it favors a good bargain between activity and stability, while drastically reducing the amount of noble metal.


Author(s):  
Hai Liu ◽  
Baiyu Miao ◽  
Hongyuan Chuai ◽  
Xiaoyi Chen ◽  
Sheng Zhang ◽  
...  

2021 ◽  
pp. 151615
Author(s):  
Vyacheslav A. Timofeev ◽  
Vladimir I. Mashanov ◽  
Alexandr I. Nikiforov ◽  
Ivan D. Loshkarev ◽  
Dmitry V. Gulyaev ◽  
...  

Author(s):  
Chongjian Zhou ◽  
Yong Kyu Lee ◽  
Yuan Yu ◽  
Sejin Byun ◽  
Zhong-Zhen Luo ◽  
...  

AbstractThermoelectric materials generate electric energy from waste heat, with conversion efficiency governed by the dimensionless figure of merit, ZT. Single-crystal tin selenide (SnSe) was discovered to exhibit a high ZT of roughly 2.2–2.6 at 913 K, but more practical and deployable polycrystal versions of the same compound suffer from much poorer overall ZT, thereby thwarting prospects for cost-effective lead-free thermoelectrics. The poor polycrystal bulk performance is attributed to traces of tin oxides covering the surface of SnSe powders, which increases thermal conductivity, reduces electrical conductivity and thereby reduces ZT. Here, we report that hole-doped SnSe polycrystalline samples with reagents carefully purified and tin oxides removed exhibit an ZT of roughly 3.1 at 783 K. Its lattice thermal conductivity is ultralow at roughly 0.07 W m–1 K–1 at 783 K, lower than the single crystals. The path to ultrahigh thermoelectric performance in polycrystalline samples is the proper removal of the deleterious thermally conductive oxides from the surface of SnSe grains. These results could open an era of high-performance practical thermoelectrics from this high-performance material.


2021 ◽  
Author(s):  
Ana Lucía Paredes-Doig ◽  
Elizabeth Doig-Camino ◽  
Rosario Sun-Kou ◽  
Gino Picasso ◽  
Adolfo La Rosa-Toro

With the sensors made in the laboratory, two electronic noses were built. One of them, of platinum doped tin oxides and the other of palladium. The sensing of the wines was monitored with the LabVIEW software and the statistical methods were applied with the XLSTAT software. It was observed that for the nose of platinum sensor a difference in the groups of commercial and unknown wines was shown. This difference is attributed to the brand or origin of the wines. While the nose of palladium sensors allowed to distinguish the strains because it locked the Borgoña wines in a different conglomerate. This could be observed with the PCA, cluster and Factorial methods, complementing the three methods the statistical information.


2021 ◽  
Vol 56 ◽  
pp. 504-511
Author(s):  
Yalong Zou ◽  
Deyu Liu ◽  
Xiangrui Meng ◽  
Qitao Liu ◽  
Yang Zhou ◽  
...  
Keyword(s):  

2021 ◽  
Vol 24 ◽  
pp. 100603
Author(s):  
Guojie Chao ◽  
Xingyu An ◽  
Longsheng Zhang ◽  
Jing Tian ◽  
Wei Fan ◽  
...  
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