Yuchan Dong
University of Toronto
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Publication
Featured researches published by Yuchan Dong.
ACS Nano | 2016
Le He; Thomas E. Wood; Bo Wu; Yuchan Dong; Laura B. Hoch; Laura M. Reyes; Di Wang; Christian Kübel; Chenxi Qian; Jia Jia; Kristine Liao; Paul O'Brien; Amit Sandhel; Joel Y. Y. Loh; Paul Szymanski; Nazir P. Kherani; Tze Chien Sum; Charles A. Mims; Geoffrey A. Ozin
The development of strategies for increasing the lifetime of photoexcited charge carriers in nanostructured metal oxide semiconductors is important for enhancing their photocatalytic activity. Intensive efforts have been made in tailoring the properties of the nanostructured photocatalysts through different ways, mainly including band-structure engineering, doping, catalyst-support interaction, and loading cocatalysts. In liquid-phase photocatalytic dye degradation and water splitting, it was recently found that nanocrystal superstructure based semiconductors exhibited improved spatial separation of photoexcited charge carriers and enhanced photocatalytic performance. Nevertheless, it remains unknown whether this strategy is applicable in gas-phase photocatalysis. Using porous indium oxide nanorods in catalyzing the reverse water-gas shift reaction as a model system, we demonstrate here that assembling semiconductor nanocrystals into superstructures can also promote gas-phase photocatalytic processes. Transient absorption studies prove that the improved activity is a result of prolonged photoexcited charge carrier lifetimes due to the charge transfer within the nanocrystal network comprising the nanorods. Our study reveals that the spatial charge separation within the nanocrystal networks could also benefit gas-phase photocatalysis and sheds light on the design principles of efficient nanocrystal superstructure based photocatalysts.
Advanced Science | 2017
Jia Jia; Hong Wang; Zhuole Lu; Paul G. O'Brien; Mireille Ghoussoub; Paul N. Duchesne; Ziqi Zheng; Peicheng Li; Qiao Qiao; Lu Wang; Alan Gu; Abdinoor A. Jelle; Yuchan Dong; Qiang Wang; Kulbir Kaur Ghuman; Thomas E. Wood; Chenxi Qian; Yue Shao; Chenyue Qiu; Miaomiao Ye; Yimei Zhu; Zheng-Hong Lu; Peng Zhang; Amr S. Helmy; Chandra Veer Singh; Nazir P. Kherani; Doug D. Perovic; Geoffrey A. Ozin
Abstract This study has designed and implemented a library of hetero‐nanostructured catalysts, denoted as Pd@Nb2O5, comprised of size‐controlled Pd nanocrystals interfaced with Nb2O5 nanorods. This study also demonstrates that the catalytic activity and selectivity of CO2 reduction to CO and CH4 products can be systematically tailored by varying the size of the Pd nanocrystals supported on the Nb2O5 nanorods. Using large Pd nanocrystals, this study achieves CO and CH4 production rates as high as 0.75 and 0.11 mol h−1 gPd −1, respectively. By contrast, using small Pd nanocrystals, a CO production rate surpassing 18.8 mol h−1 gPd −1 is observed with 99.5% CO selectivity. These performance metrics establish a new milestone in the champion league of catalytic nanomaterials that can enable solar‐powered gas‐phase heterogeneous CO2 reduction. The remarkable control over the catalytic performance of Pd@Nb2O5 is demonstrated to stem from a combination of photothermal, electronic and size effects, which is rationally tunable through nanochemistry.
Journal of Materials Chemistry C | 2016
Miaomiao Ye; Chenxi Qian; Wei Sun; Le He; Jia Jia; Yuchan Dong; Wenjie Zhou
Correction for ‘Dye colour switching by hydride-terminated silicon particles and its application as an oxygen indicator’ by Miaomiao Ye et al., J. Mater. Chem. C, 2016, DOI: 10.1039/c6tc00749j.
Advanced Science | 2018
Yuchan Dong; Kulbir Kaur Ghuman; Paul N. Duchesne; Wenjie Zhou; Joel Y. Y. Loh; Abdinoor A. Jelle; Jia Jia; Di Wang; Xiaoke Mu; Christian Kübel; Lu Wang; Le He; Mireille Ghoussoub; Qiang Wang; Thomas E. Wood; Laura M. Reyes; Peng Zhang; Nazir P. Kherani; Chandra Veer Singh; Geoffrey A. Ozin
Abstract Frustrated Lewis pairs (FLPs) created by sterically hindered Lewis acids and Lewis bases have shown their capacity for capturing and reacting with a variety of small molecules, including H2 and CO2, and thereby creating a new strategy for CO2 reduction. Here, the photocatalytic CO2 reduction behavior of defect‐laden indium oxide (In2O3− x(OH)y) is greatly enhanced through isomorphous substitution of In3+ with Bi3+, providing fundamental insights into the catalytically active surface FLPs (i.e., In—OH···In) and the experimentally observed “volcano” relationship between the CO production rate and Bi3+ substitution level. According to density functional theory calculations at the optimal Bi3+ substitution level, the 6s2 electron pair of Bi3+ hybridizes with the oxygen in the neighboring In—OH Lewis base site, leading to mildly increased Lewis basicity without influencing the Lewis acidity of the nearby In Lewis acid site. Meanwhile, Bi3+ can act as an extra acid site, serving to maximize the heterolytic splitting of reactant H2, and results in a more hydridic hydride for more efficient CO2 reduction. This study demonstrates that isomorphous substitution can effectively optimize the reactivity of surface catalytic active sites in addition to influencing optoelectronic properties, affording a better understanding of the photocatalytic CO2 reduction mechanism.
ACS Applied Materials & Interfaces | 2018
Young Feng Li; Navid Soheilnia; Mark Greiner; Ulrich Ulmer; Thomas E. Wood; Abdinoor A. Jelle; Yuchan Dong; Annabelle P. Y. Wong; Jia Jia; Geoffrey A. Ozin
The design of photocatalysts able to reduce CO2 to value-added chemicals and fuels could enable a closed carbon circular economy. A common theme running through the design of photocatalysts for CO2 reduction is the utilization of semiconductor materials with high-energy conduction bands able to generate highly reducing electrons. Far less explored in this respect are low-energy conduction band materials such as WO3. Specifically, we focus attention on the use of Pd nanocrystal decorated WO3 nanowires as a heretofore-unexplored photocatalyst for the hydrogenation of CO2. Powder X-ray diffraction, thermogravimetric analysis, ultraviolet-visible-near infrared, and in situ X-ray photoelectron spectroscopy analytical techniques elucidate the hydrogen tungsten bronze, H yWO3- x, as the catalytically active species formed via the H2 spillover effect by Pd. The existence in H yWO3- x of Brønsted acid hydroxyls OH, W(V) sites, and oxygen vacancies (VO) facilitate CO2 capture and reduction reactions. Under solar irradiation, CO2 reduction attains CO production rates as high as 3.0 mmol gcat-1 hr-1 with a selectivity exceeding 99%. A combination of reaction kinetic studies and in situ diffuse reflectance infrared Fourier transform spectroscopy measurements provide a valuable insight into thermochemical compared to photochemical surface reaction pathways, considered responsible for the hydrogenation of CO2 by Pd@H yWO3- x.
Advanced Energy Materials | 2017
Miaomiao Ye; Jia Jia; Zhejian Wu; Chenxi Qian; Rong Chen; Paul G. O'Brien; Wei Sun; Yuchan Dong; Geoffrey A. Ozin
Chemical Society Reviews | 2017
Jia Jia; Chenxi Qian; Yuchan Dong; Young Feng Li; Hong Wang; Mireille Ghoussoub; Keith T. Butler; Aron Walsh; Geoffrey A. Ozin
Advanced Science | 2016
Jia Jia; Paul G. O'Brien; Le He; Qiao Qiao; Teng Fei; Laura M. Reyes; Timothy E. Burrow; Yuchan Dong; Kristine Liao; M. Varela; Stephen J. Pennycook; Mohamad Hmadeh; Amr S. Helmy; Nazir P. Kherani; Doug D. Perovic; Geoffrey A. Ozin
Advanced Functional Materials | 2016
Dongzhi Chen; Wei Sun; Chenxi Qian; Laura M. Reyes; Annabelle P. Y. Wong; Yuchan Dong; Jia Jia; Kenneth K. Chen; Geoffrey A. Ozin
Joule | 2018
Lu Wang; Mireille Ghoussoub; Hong Wang; Yue Shao; Wei Sun; Athanasios A. Tountas; Thomas E. Wood; Hai Li; Joel Yi Yang Loh; Yuchan Dong; Meikun Xia; Young Feng Li; Shenghua Wang; Jia Jia; Chenyue Qiu; Chenxi Qian; Nazir P. Kherani; Le He; Xiaohong Zhang; Geoffrey A. Ozin