TiO2/MXene Ti3C2 composite with excellent photocatalytic CO2 reduction activity
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Jiaguo Yu | Liuyang Zhang | Jiaguo Yu | Jingxiang Low | L. Zhang | Baojia Shen | Tong Tong | Jingxiang Low | Baojia Shen | Tong Tong
[1] B. Cheng,et al. Direct evidence and enhancement of surface plasmon resonance effect on Ag-loaded TiO 2 nanotube arrays for photocatalytic CO 2 reduction , 2018 .
[2] T. Peng,et al. Direct Z-scheme g-C_3N_4/WO_3 photocatalyst with atomically defined junction for H_2 production , 2017 .
[3] Jingyu Wang,et al. Review on porous nanomaterials for adsorption and photocatalytic conversion of CO 2 , 2017 .
[4] Jiaguo Yu,et al. A review on TiO 2 -based Z-scheme photocatalysts , 2017 .
[5] Jinfeng Chen,et al. Preparation of Ti3C2 and Ti2C MXenes by fluoride salts etching and methane adsorptive properties , 2017 .
[6] K. Mahmoud,et al. Effect of surface termination on ion intercalation selectivity of bilayer Ti3C2T2 (T = F, O and OH) MXene , 2017 .
[7] Jiaguo Yu,et al. A direct Z-scheme g-C3N4/SnS2 photocatalyst with superior visible-light CO2 reduction performance , 2017 .
[8] T. Kojima,et al. Is water more reactive than H2 in photocatalytic CO2 conversion into fuels using semiconductor catalysts under high reaction pressures , 2017 .
[9] Van-Duong Dao,et al. Novel photocatalytic conversion of CO2 by vanadium-doped tantalum nitride for valuable solar fuel production , 2017 .
[10] M. Jaroniec,et al. Facet effect of Pd cocatalyst on photocatalytic CO 2 reduction over g-C 3 N 4 , 2017 .
[11] Wei You,et al. Hierarchical Porous O-Doped g-C3 N4 with Enhanced Photocatalytic CO2 Reduction Activity. , 2017, Small.
[12] Jiaguo Yu,et al. Hybrid carbon@TiO2 hollow spheres with enhanced photocatalytic CO2 reduction activity , 2017 .
[13] Junying Zhang,et al. Selective photocatalytic reduction of CO2 into CH4 over Pt-Cu2O TiO2 nanocrystals: The interaction between Pt and Cu2O cocatalysts , 2017 .
[14] Weitao Yang,et al. Product selectivity in plasmonic photocatalysis for carbon dioxide hydrogenation , 2017, Nature Communications.
[15] M. Jaroniec,et al. Ultra-thin nanosheet assemblies of graphitic carbon nitride for enhanced photocatalytic CO2 reduction , 2017 .
[16] Yajie Yang,et al. Large-Area Highly Conductive Transparent Two-Dimensional Ti2CTx Film. , 2017, The journal of physical chemistry letters.
[17] Jiaguo Yu,et al. Surface modification and enhanced photocatalytic CO2 reduction performance of TiO2: a review , 2017 .
[18] Weichun Ye,et al. Preparation of Pt/TiO 2 hollow nanofibers with highly visible light photocatalytic activity , 2017 .
[19] Aijun Du,et al. Ti3C2 MXene co-catalyst on metal sulfide photo-absorbers for enhanced visible-light photocatalytic hydrogen production , 2017, Nature Communications.
[20] T. Pham,et al. Novel photocatalytic activity of Cu@V co-doped TiO2/PU for CO2 reduction with H2O vapor to produce solar fuels under visible light , 2017 .
[21] T. Kojima,et al. Efficient volcano-type dependence of photocatalytic CO2 conversion into methane using hydrogen at reaction pressures up to 0.80MPa , 2017 .
[22] Jiaguo Yu,et al. Fabrication and photocatalytic activity enhanced mechanism of direct Z-scheme g-C 3 N 4 /Ag 2 WO 4 photocatalyst , 2017 .
[23] C. Trapalis,et al. Alternative photocatalysts to TiO2 for the photocatalytic reduction of CO2 , 2017 .
[24] Juan Li,et al. Enhanced visible light activity on direct contact Z-scheme g-C3N4-TiO2 photocatalyst , 2017 .
[25] N. S. Amin,et al. Selective photocatalytic reduction of CO2 by H2O/H2 to CH4 and CH3OH over Cu-promoted In2O3/TiO2 nanocatalyst , 2016 .
[26] J. E. Lee,et al. Size-dependent plasmonic effects of Au and Au@SiO2 nanoparticles in photocatalytic CO2 conversion reaction of Pt/TiO2 , 2016 .
[27] Jiaguo Yu,et al. Fabrication and enhanced CO2 reduction performance of N-self-doped TiO2 microsheet photocatalyst by bi-cocatalyst modification , 2016 .
[28] Chao Zhang,et al. High-Capacitance Mechanism for Ti3C2Tx MXene by in Situ Electrochemical Raman Spectroscopy Investigation. , 2016, ACS nano.
[29] K. Ohkubo,et al. Photocatalyses of Ru(II)–Re(I) binuclear complexes connected through two ethylene chains for CO2 reduction , 2016 .
[30] Yun Zhang,et al. Enhanced CH4 yield by photocatalytic CO2 reduction using TiO2 nanotube arrays grafted with Au, Ru, and ZnPd nanoparticles , 2016, Nano Research.
[31] Heng Wu,et al. Ti3C2 MXenes with Modified Surface for High-Performance Electromagnetic Absorption and Shielding in the X-Band. , 2016, ACS applied materials & interfaces.
[32] Muhammad Tahir,et al. Dynamic photocatalytic reduction of CO2 to CO in a honeycomb monolith reactor loaded with Cu and N doped TiO2 nanocatalysts , 2016 .
[33] Jinlong Gong,et al. CO2 photo-reduction: insights into CO2 activation and reaction on surfaces of photocatalysts , 2016 .
[34] Haiquan Xie,et al. Thickness-ultrathin and bismuth-rich strategies for BiOBr to enhance photoreduction of CO2 into solar fuels , 2016 .
[35] N. S. Resende,et al. Zn-Cu promoted TiO2 photocatalyst for CO2 reduction with H2O under UV light , 2016 .
[36] Z. Li,et al. Self-assembly of CPO-27-Mg/TiO2 nanocomposite with enhanced performance for photocatalytic CO2 reduction , 2016 .
[37] Jie Shen,et al. Enhancement of photocatalytic reduction of CO2 to CH4 over TiO2 nanosheets by modifying with sulfuric acid , 2016 .
[38] Kevin M. Cook,et al. X-ray photoelectron spectroscopy of select multi-layered transition metal carbides (MXenes) , 2016 .
[39] Yi Tang,et al. Composites of TiO2Nanoparticles Deposited on Ti3C2MXene Nanosheets with Enhanced Electrochemical Performance , 2016 .
[40] M. Radovic,et al. Template-free 3D titanium carbide (Ti3C2Tx) MXene particles crumpled by capillary forces. , 2016, Chemical communications.
[41] Jiaguo Yu,et al. Graphene-Based Photocatalysts for CO2 Reduction to Solar Fuel. , 2015, The journal of physical chemistry letters.
[42] Jiaguo Yu,et al. Sulfur-doped g-C3N4 with enhanced photocatalytic CO2-reduction performance , 2015 .
[43] Jiaguo Yu,et al. A Hierarchical Z-Scheme CdS-WO3 Photocatalyst with Enhanced CO2 Reduction Activity. , 2015, Small.
[44] T. Peng,et al. Enhanced photocatalytic activity of g-C3N4 for selective CO2 reduction to CH3OH via facile coupling of ZnO: a direct Z-scheme mechanism , 2015 .
[45] N. Zhang,et al. Waltzing with the Versatile Platform of Graphene to Synthesize Composite Photocatalysts. , 2015, Chemical reviews.
[46] Wenguang Tu,et al. Au@TiO₂ yolk-shell hollow spheres for plasmon-induced photocatalytic reduction of CO₂ to solar fuel via a local electromagnetic field. , 2015, Nanoscale.
[47] Tao Wang,et al. In situ synthesis of ordered mesoporous Co-doped TiO2 and its enhanced photocatalytic activity and selectivity for the reduction of CO2 , 2015 .
[48] Mietek Jaroniec,et al. Semiconductor-based photocatalytic CO2 conversion , 2015 .
[49] Jiaguo Yu,et al. Cubic anatase TiO2 nanocrystals with enhanced photocatalytic CO2 reduction activity. , 2015, Chemical communications.
[50] Jiaguo Yu,et al. Amine-Functionalized Titanate Nanosheet-Assembled Yolk@Shell Microspheres for Efficient Cocatalyst-Free Visible-Light Photocatalytic CO2 Reduction. , 2015, ACS applied materials & interfaces.
[51] L. An,et al. Fabrication of layered Ti3C2 with an accordion-like structure as a potential cathode material for high performance lithium–sulfur batteries , 2015 .
[52] R. Ruoff,et al. Graphene, related two-dimensional crystals, and hybrid systems for energy conversion and storage , 2015, Science.
[53] Yury Gogotsi,et al. Conductive two-dimensional titanium carbide ‘clay’ with high volumetric capacitance , 2014, Nature.
[54] Li-zhen Fan,et al. Two-dimensional Ti3C2 as anode material for Li-ion batteries , 2014 .
[55] Majid Beidaghi,et al. In situ environmental transmission electron microscopy study of oxidation of two-dimensional Ti3C2 and formation of carbon-supported TiO2 , 2014 .
[56] Wei Xiao,et al. Enhanced photocatalytic CO₂-reduction activity of anatase TiO₂ by coexposed {001} and {101} facets. , 2014, Journal of the American Chemical Society.
[57] T. Andreu,et al. Engineering the TiO2 outermost layers using magnesium for carbon dioxide photoreduction , 2014 .
[58] M. Jaroniec,et al. A noble metal-free reduced graphene oxide–CdS nanorod composite for the enhanced visible-light photocatalytic reduction of CO2 to solar fuel , 2014 .
[59] Yury Gogotsi,et al. 25th Anniversary Article: MXenes: A New Family of Two‐Dimensional Materials , 2014, Advanced materials.
[60] Jiaguo Yu,et al. Enhanced visible-light photocatalytic activity of plasmonic Ag and graphene co-modified Bi2WO6 nanosheets. , 2014, Physical chemistry chemical physics : PCCP.
[61] Qing Tang,et al. Graphene-analogous low-dimensional materials , 2013 .
[62] Yury Gogotsi,et al. Intercalation and delamination of layered carbides and carbonitrides , 2013, Nature Communications.
[63] Yury Gogotsi,et al. Two-dimensional transition metal carbides. , 2012, ACS nano.
[64] V. Presser,et al. Two‐Dimensional Nanocrystals Produced by Exfoliation of Ti3AlC2 , 2011, Advanced materials.
[65] Yong Zhou,et al. High-yield synthesis of ultrathin and uniform Bi₂WO₆ square nanoplates benefitting from photocatalytic reduction of CO₂ into renewable hydrocarbon fuel under visible light. , 2011, ACS applied materials & interfaces.
[66] Stefan Grimme,et al. Accurate description of van der Waals complexes by density functional theory including empirical corrections , 2004, J. Comput. Chem..
[67] Matt Probert,et al. First-principles simulation: ideas, illustrations and the CASTEP code , 2002 .
[68] E. Papazoglou,et al. The complementary nature of x-ray photoelectron spectroscopy and angle-resolved x-ray diffraction Part I: Background and theory , 1998 .
[69] Burke,et al. Generalized Gradient Approximation Made Simple. , 1996, Physical review letters.
[70] R. C. King,et al. Handbook of X Ray Photoelectron Spectroscopy: A Reference Book of Standard Spectra for Identification and Interpretation of Xps Data , 1995 .