z-logo
Premium
Pt‐Rh/TiO 2 /activated carbon as highly active and stable HI decomposition catalyst for hydrogen production in sulfur‐iodine (SI) process
Author(s) -
Punkrawee Wachirapun,
Yamanaka Azusa,
Matsuda Junko,
Mitoma Yukiko,
Nishiyama Noriko,
Ishihara Tatsumi
Publication year - 2018
Publication title -
international journal of energy research
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.808
H-Index - 95
eISSN - 1099-114X
pISSN - 0363-907X
DOI - 10.1002/er.4031
Subject(s) - decomposition , catalysis , chemistry , bimetallic strip , hydrogen production , sulfur , dispersion (optics) , x ray photoelectron spectroscopy , chemical decomposition , hydrogen , inorganic chemistry , chemical process of decomposition , activated carbon , chemical engineering , organic chemistry , adsorption , physics , optics , engineering
Summary Pt‐TiO 2 loaded on activated carbon was studied as an active and stable catalyst to HI decomposition for H 2 formation in the sulfur‐iodine process. Although the activity of TiO 2 ‐loaded catalyst was slightly lower HI conversion than that of CeO 2 loaded one, the higher stability against HI decomposition reaction was achieved and almost equilibrium conversion was sustained over ~65 h examined. Moreover, effects of Rh or Ir addition on HI conversion were studied and it was found that Pt‐Rh bimetallic system was highly active and stable to HI decomposition. Scanning transmission electron micrograph observation suggested that the increased HI decomposition activity was assigned to the increased dispersion of Pt particles. High dispersion state of Pt was sustained after HI decomposition at 773 K by addition of Rh. Since the formation of PtI 4 was suggested by X‐ray photoelectron spectroscopy measurement during HI decomposition, increased stability by addition of Rh seems to be assigned to the high chemical stability of Rh against iodine. Almost the equilibrium HI conversion on Pt‐Rh‐TiO 2 /M563 was sustained over 300 hours at 673 K.

This content is not available in your region!

Continue researching here.

Having issues? You can contact us here
Accelerating Research

Address

John Eccles House
Robert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom