Unusual doping induced phase transitions in NiS via solventless synthesis enabling superior bifunctional electrocatalytic activity
文献信息
Ginena Bildard Shombe, Malik Dilshad Khan, Asma M. Alenad, Jonghyun Choi, Tenzin Ingsel, Ram K. Gupta, Neerish Revaprasadu
Transition metal sulfides have been investigated as promising bifunctional materials for catalytic energy generation and energy storage applications. Although various strategies such as tuning the size, phase or defects and composition engineering have led to catalytic enhancement, there still remains the requirement for better performance for practical applications. In this study, we have used a potentially scalable solventless route for phase selective synthesis of α-NiS or β-NiS. Both phases were doped with different transition metals (Cu, Co and Fe) for enhanced catalytic performance. Interestingly, besides commonly observed thermal assisted phase transition, dopant (Co, Cu, and Fe) induced α- to β-phase transition or vice versa was also observed which has rarely been reported for NiS. The effect of dopants on the crystal structure and electrocatalytic activity has been investigated. The best supercapacitive behavior was observed for Co-doped α-NiS which showed a specific capacitance of 1586 F g−1 at a current density of 0.5 A g−1 and a high rate capability. On the other hand, Fe-doped α-NiS displayed the best electrocatalytic activity for both the OER (266 mV at 10 mA cm−2) and the HER (146 mV at 10 mA cm−2), with Tafel slopes of 79 and 113 mV dec−1 respectively. The Fe-doped α-NiS catalyst was also used as both the anode and cathode in an electrolyzer, in which an overpotential of about 410 mV at 10 mA cm−2 was observed. The prepared electrodes demonstrate outstanding stability and flexibility.
相关文献
Ruthenium/HI-catalyzed direct hydromethylation of indoles and quinolines in DME
Pengxiang Gao, Zheng Wang, Ruotong Chang, Wei Li, Ziwei Zhao, Dexin Fu, Qingbin Liu
DOI: 10.1039/D3NJ03341D
1D MnSe@carbon nanofiber as a high-rate anode for sodium-ion batteries: electrochemical and ex situ mechanistic investigation of Na+ charge storage
Elayaperumal Sujithkrishnan, Sivasubramaniam Ragul, Shamima Hussain, Villa Krishna Harika, Perumal Elumalai
DOI: 10.1039/D3NJ04735K
A low-shrinkage-stress and anti-bacterial adherent dental resin composite: physicochemical properties and biocompatibility
Shengcan Zhang, Fang Liu, Jingwei He
DOI: 10.1039/D3TB01556D
pH-dependent adsorption of the sulfamethoxazole antibiotic on HKUST-1@CNS nanocomposite corroborating efficiency, mechanistic, and kinetic studies
Geetika Jain, Puja Bhattacharyya, Mrinal Kanti Mandal, Rajib Ghosh Chaudhuri, Sandip Chakrabarti
DOI: 10.1039/D3NJ04424F
A copper–platinum nanoplatform for synergistic photothermal and chemodynamic tumor therapy via ROS outburst and GSH exhaustion
Chao Li, Yan Kang, Chaohui Zhou, Nengqin Jia
DOI: 10.1039/D3TB02288A
Ingenious microenvironment regulation of a metal–organic framework (MOF) nanoreactor for electrochemical detection of chlorogenic acid
Junfeng Wang, Sihua Pan, Wang Sun, Yang Wang
DOI: 10.1039/D3NJ05061K
A laser-induced zinc oxide/graphene photoelectrode for a photocurrent-polarity-switching photoelectrochemical biosensor with bipedal DNA walker amplification
Ruijin Zeng, Rongjian Sa, Dianping Tang, Qiang Chen
DOI: 10.1039/D3TB02742B
A copper(ii) metal–organic framework with 2,2-dimethylglutarate and imidazole ligands: synthesis, characterization and catalytic performance for cycloaddition of CO2 to epoxides
Sevde Demir, Serpil Denizaltı, Hakan Erer, Okan Zafer Yeşilel
DOI: 10.1039/D3NJ04256A
Development of a novel Cd(ii) metal complex for solvent-sensitive detection of Zn(ii) and Mg(ii) with the formation of Cd(ii)–Zn(ii)/Cd(ii)–Mg(ii) complexes and their application in effective Schottky devices
Dibyendu Sathapat, Mainak Das, Manik Das, Uttam Kumar Das, Arijit Bag, Soumik Laha, Partha Pratim Ray, Bidhan Chandra Samanta, Tithi Maity
DOI: 10.1039/D3NJ04660E
您可能还喜欢
什么是5-Fluoro-4-iodo-2-methylaniline(CAS号:307306-08-7)?
5-氟-4-碘-2-甲氨基苯属于芳香族化合物,其分子式为C8H7FN2I。该化合物具有一定的反应活性,在有机合成和药物化学领域有一定的应用。
4-氟-3-硝基三氟甲苯(CAS号:367-86-2)通常如何合成?
4-氟-3-硝基三氟甲苯通常通过将三氟甲基苯在酸性条件下催化氧化为三氟甲基硝基苯,然后进行氟化反应得到目标化合物。该过程需要使用催化剂,如三氟乙酸,反应产率较高...
6-氯-9-(2,3,5-三苯甲酰氧基-2-C-甲基-beta-D-呋喃核糖基)-9H-嘌呤(CAS号:205171-05-7)的物理化学性质是什么?
该化合物为白色至类白色晶体,分子量约为1046.95。它在水中几乎不溶,在有机溶剂如乙腈和甲醇中具有一定的溶解性。该化合物具有良好的化学稳定性和生物活性。
如何储存6-氟喹啉-4-羧酸(CAS号:220844-73-5)?
6-氟喹啉-4-羧酸应储存在阴凉、干燥、通风良好的地方,避免阳光直射。储存在密闭容器中,避免与空气中的水分接触。储存温度应控制在室温以下,避免高温。
(2S,2'S,3S,3'S)-3,3'-di-tert-butyl-4,4'-bis(2,6-dimethoxyphenyl)-2,2',3,3'-tetrahydro-2,2'-bibenzo[d][1,3]oxaphosphole(CAS号:1435940-21-8)通常如何合成?
该化合物通常通过芳香族化合物的亲核取代反应合成,首先将2,6-二甲氧基苯基引入到双环结构中,然后通过特定条件下的还原或氧化反应引入二叔丁基。反应过程中使用了钯作...
如何储存KY02111(CAS号:1118807-13-8)?
KY02111应储存于阴凉、干燥、通风良好的地方,避免阳光直射和高温环境。应使用合适的密闭容器储存,并确保容器密封良好,防止水分和潮气进入。在储存期间,应注意检...
如何储存4-(4-氯苯氧基)丁酸乙酯(CAS号:59227-79-1)?
4-(4-氯苯氧基)丁酸乙酯应储存在阴凉、干燥、通风良好的地方,远离火源和热源。避免阳光直射,防止容器破裂导致泄漏。储存时应保持容器密封,避免与空气中的水蒸气接...
4-庚基苯乙酮(CAS号:37593-03-6)安全吗?
4-庚基苯乙酮相对安全,但在使用和储存时仍需注意。应避免吸入其蒸气,避免皮肤接触,使用时需佩戴防护眼镜和手套。储存时应远离火源和热源,保持容器密封,放置于阴凉、...
什么是乙基2-氨基-4-(3-溴苯基)噻吩-3-羧酸乙酯(CAS号:438218-48-5)?
乙基2-氨基-4-(3-溴苯基)噻吩-3-羧酸乙酯是一种有机化合物,分子式为C16H12BrN2O2S。它是一种含有噻吩环、氨基、溴苯基和羧酸酯结构的化合物。这...
什么是(9ci)-2-氨基-6-甲基-苯甲酰胺(CAS号:1885-31-0)?
(9ci)-2-氨基-6-甲基-苯甲酰胺是一种化学化合物,其英文名称为2-Amino-6-methylbenzamide,CAS号为1885-31-0。该化合物...















