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SCI-Expanded JCR Q2 Özgün Makale Scopus
Enhanced Hydrogen Evolution Reaction Catalysis at Template-Free Liquid/Liquid Interfaces by In Situ Electrodeposited Amorphous Molybdenum Sulfide on Carbon Nanotubes
ACS Applied Energy Materials 2021 Cilt 4 Sayı 8
Scopus Eşleşmesi Bulundu
13
Atıf
4
Cilt
8330-8339
Sayfa
Özet
In situ deposited catalysts are drawing great attention in the hydrogen evolution reaction for photocatalytic and electrocatalytic processes due to their inexpensive and simple preparation methods. Molybdenum sulfide derivatives are convenient alternatives to the well-known and efficient noble metallic catalyst Pt due to their uncostly and abundant nature. Herein, liquid/liquid interfaces are chosen to determine the catalytic activity of a template-free nanocomposite catalyst composed of MoSx grown in situ on multiwalled CNTs (CNT/MoSx) during catalytic hydrogen production for the first time. The organic sacrificial agent decamethylferrocene plays the role of a reductant for both (NH4)2MoS4 and protons to obtain MoSx and molecular hydrogen, respectively. The catalytic activity of CNT/MoSx is investigated by four-electrode voltammetry and biphasic reactions at the water/1,2-dichloroethane (DCE) interface. In addition, the in situ obtained CNT/MoSx nanocomposite catalyst is isolated from the interface and characterized by morphological and structural techniques. Moreover, the reaction kinetics for hydrogen production is calculated by real-time UV-vis absorption spectroscopy via measuring decamethylferrocenium concentrations. The hydrogen evolution reaction rate of CNT/MoSx increases by 85- and 2.5-fold compared with those of the uncatalyzed reaction and free-MoSx, respectively. The increased catalytic activity of CNT/MoSx is based on the enhanced charge transport efficiency of CNTs due to their one-dimensional (1D) structure, high electrical conductivity, excess active sites on MoSx, and the synergetic effect between CNTs and MoSx. This study paves the way for preparing nanocomposite catalysts with different substrates and also different energy applications using the CNT/MoSx nanocomposite catalyst.
Web of Science Eşleşmesi Bulundu
13
WoS Atıf
4
Cilt
Article
Belge Türü
Kaynak: ACS APPLIED ENERGY MATERIALS · s. 8330-8339
Anahtar Kelimeler (WoS)

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Scimago Dergi Bilgisi Otomatik ISSN Eşleştirmesi 2021 yılı verileri
ACS Applied Energy Materials
Q1
SJR Quartile
1,613
SJR Skoru
103
H-Index
Kategoriler: Chemical Engineering (miscellaneous) (Q1) · Electrical and Electronic Engineering (Q1) · Electrochemistry (Q1) · Energy Engineering and Power Technology (Q1) · Materials Chemistry (Q1)
Alanlar: Chemical Engineering · Chemistry · Energy · Engineering · Materials Science
Ülke: United States · American Chemical Society
Bu bilgiler makale yılına göre Scimago veritabanından ISSN eşleştirmesiyle otomatik getirilmektedir. Dergi sıralama verileri Scimago'nun ilgili yılı baz alınmaktadır.

Anahtar Kelimeler

WoS | Bir kelimeye tıklayıp ilgili kaynaktaki yayınları görün.

Makale Bilgileri

Dergi ACS Applied Energy Materials
ISSN 2574-0962
Yıl 2021 / 8. ay
Cilt / Sayı 4 / 8
Sayfalar 8330 – 8339
Makale Türü Özgün Makale
Hakemlik Hakemli
Endeks SCI-Expanded
JCR Quartile Q2
Teşvik Puanı 8,64 · YÖKSİS Akademik Teşvik
Yayın Dili İngilizce
Kapsam Uluslararası
Toplam Yazar 3 kişi
Erişim Türü Elektronik
Alan Fen Bilimleri ve Matematik Temel Alanı Kimya Fiziksel Kimya Elektrokimya Nanoteknoloji

YÖKSİS Yazar Kaydı

Yazar Adı ASLAN EMRE, YANALAK GİZEM, HATAY PATIR İMREN
YÖKSİS ID 5622744

Metrikler

Scopus Atıf 13
Havuz Atıfları 0
JCR Quartile Q2
Teşvik Puanı 8,64
Yazar Sayısı 3