Coherent X-ray Imaging of CO-Adsorption-Induced Structural Changes in Pt Nanoparticles: Implications for Catalysis; ACS Applied Nano Materials; Vol. 2, iss. 8

Detalhes bibliográficos
Parent link:ACS Applied Nano Materials
Vol. 2, iss. 8.— 2019.— [P. 4818-4824]
Autor Corporativo: Национальный исследовательский Томский политехнический университет Исследовательская школа физики высокоэнергетических процессов
Outros Autores: Abuin M. Manuel, Kim Y. Y. Young Yong, Runge H. Henning, Kulkarni S. Satishkumar, Maier S. Simon, Dzhigaev D. Dmitry, Lazarev S. V. Sergey Vladimirovich, Gelisio L. Luca, Seitz Ch. Christoph, Richard M. -I. Marie-Ingrid, Zhou T. Tao, Vonk V. Vedran, Keller T. F. Thomas, Vartanyants I. A. Ivan, Stierle A. Andreas
Resumo:Title screen
Using coherent X-ray diffraction imaging (CXDI) as an in situ tool, we determined the shape and strain state of a platinum nanoparticle with 160 nm diameter supported by a strontium titanate substrate. The experiment was performed at a temperature of 400 K under continuous gas flow conditions of pure Ar and Ar/CO mixtures. The nanoparticle was preselected by scanning electron microscopy (SEM) and postanalyzed by atomic force microscopy (AFM). We obtain a very good agreement between the overall nanoparticle size, shape, and defect structure as determined by CXDI and AFM. In addition, we compare the strain state in the nanoparticle near surface region and its bulk: For pure Ar flow, we find a slight compressive strain in the nanoparticle bulk compared to an expansion in the near surface region. We ascribe the latter to the presence of high index vicinal surfaces. Our analysis suggests that under mixed Ar/CO flow at 400 K reshaping of the nanoparticle occurred. New high index facets developed, leading to a stronger lattice expansion, also propagating into the nanoparticle bulk. Our high-resolution experiments pave the way for future CXDI experiments under operando catalytic reaction conditions.
Режим доступа: по договору с организацией-держателем ресурса
Idioma:inglês
Publicado em: 2019
Assuntos:
Acesso em linha:http://dx.doi.org/10.1021/acsanm.9b00764
Formato: Recurso Electrónico Capítulo de Livro
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=663924

MARC

LEADER 00000naa0a2200000 4500
001 663924
005 20250430105233.0
035 |a (RuTPU)RU\TPU\network\35094 
035 |a RU\TPU\network\35032 
090 |a 663924 
100 |a 20210317d2019 k||y0rusy50 ba 
101 0 |a eng 
135 |a drcn ---uucaa 
181 0 |a i  
182 0 |a b 
200 1 |a Coherent X-ray Imaging of CO-Adsorption-Induced Structural Changes in Pt Nanoparticles: Implications for Catalysis  |f M. Abuin, Y. Y. Kim, H. Runge [et al.] 
203 |a Text  |c electronic 
300 |a Title screen 
320 |a [References: p. 4823-4824 (50 tit.)] 
330 |a Using coherent X-ray diffraction imaging (CXDI) as an in situ tool, we determined the shape and strain state of a platinum nanoparticle with 160 nm diameter supported by a strontium titanate substrate. The experiment was performed at a temperature of 400 K under continuous gas flow conditions of pure Ar and Ar/CO mixtures. The nanoparticle was preselected by scanning electron microscopy (SEM) and postanalyzed by atomic force microscopy (AFM). We obtain a very good agreement between the overall nanoparticle size, shape, and defect structure as determined by CXDI and AFM. In addition, we compare the strain state in the nanoparticle near surface region and its bulk: For pure Ar flow, we find a slight compressive strain in the nanoparticle bulk compared to an expansion in the near surface region. We ascribe the latter to the presence of high index vicinal surfaces. Our analysis suggests that under mixed Ar/CO flow at 400 K reshaping of the nanoparticle occurred. New high index facets developed, leading to a stronger lattice expansion, also propagating into the nanoparticle bulk. Our high-resolution experiments pave the way for future CXDI experiments under operando catalytic reaction conditions. 
333 |a Режим доступа: по договору с организацией-держателем ресурса 
338 |b Российский научный фонд  |d 18-41-06001 
461 |t ACS Applied Nano Materials 
463 |t Vol. 2, iss. 8  |v [P. 4818-4824]  |d 2019 
610 1 |a электронный ресурс 
610 1 |a труды учёных ТПУ 
610 1 |a catalysis 
610 1 |a single nanoparticle 
610 1 |a in situ conditions 
610 1 |a coherent diffraction imaging 
610 1 |a hierarchical marker strategies 
610 1 |a катализ 
610 1 |a наночастицы 
610 1 |a визуализация 
610 1 |a структурные изменения 
610 1 |a адсорбция 
701 1 |a Abuin  |b M.  |g Manuel 
701 1 |a Kim  |b Y. Y.  |g Young Yong 
701 1 |a Runge  |b H.  |g Henning 
701 1 |a Kulkarni  |b S.  |g Satishkumar 
701 1 |a Maier  |b S.  |g Simon 
701 1 |a Dzhigaev  |b D.  |g Dmitry 
701 1 |a Lazarev  |b S. V.  |c physicist  |c engineer at Tomsk Polytechnic University  |f 1984-  |g Sergey Vladimirovich  |3 (RuTPU)RU\TPU\pers\35210 
701 1 |a Gelisio  |b L.  |g Luca 
701 1 |a Seitz  |b Ch.  |g Christoph 
701 1 |a Richard  |b M. -I.  |g Marie-Ingrid 
701 1 |a Zhou  |b T.  |g Tao 
701 1 |a Vonk  |b V.  |g Vedran 
701 1 |a Keller  |b T. F.  |g Thomas 
701 1 |a Vartanyants  |b I. A.  |g Ivan 
701 1 |a Stierle  |b A.  |g Andreas 
712 0 2 |a Национальный исследовательский Томский политехнический университет  |b Исследовательская школа физики высокоэнергетических процессов  |c (2017- )  |3 (RuTPU)RU\TPU\col\23551 
801 0 |a RU  |b 63413507  |c 20210317  |g RCR 
850 |a 63413507 
856 4 |u http://dx.doi.org/10.1021/acsanm.9b00764 
942 |c CF