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[1]Y.Wang,Y.Cheng,Y.Wang,S.Zhang,X.Zhang,S.Yin,M.Wang,Y.Xia,Q.Li,P.Zhao,H.Wang,Chemical vapor deposition growth of graphene domains across the Cu grain boundaries.NANO 2018,accepted.
[2]Y.Wang,Y.Wang,C.Xu,X.Zhang,L.Mei,M.Wang,Y.Xia,P.Zhao,H.Wang,Domain-boundary independency of Raman spectra for strained graphene at strong interfaces.Carbon 2018,134,37.
[3]Y.Wang,Y.Cheng,Y.Wang,S.Zhang,X.Zhang,S.Yin,M.Wang,Y.Xia,Q.Li,P.Zhao,H.Wang,Oxide-assisted growth of scalable single-crystalline graphene with seamlessly stitched millimeter-sized domains on commercial copper foils.RSC Adv.2018,8,8800.
[4]F.Guo,Y.Jiang,Z.Xu,Y.Xiao,B.Fang,Y.Liu,W.Gao,P.Zhao,H.Wang,C.Gao,Highly stretchable carbon aerogels.Nat.Comm.2018,9,881.
[5]H.Cheng,P.Zhang,P.Zhao,M.Wang,Polar cross-linked polystyrene as polysulfides anchor enhanced cycle performance and coulombic efficiency for lithium sulfur batteries.J.Electroanal.Chem.2018,810,171.
[6]S.Yin,X.Zhang,C.Xu Y.Wang,Y.Wang,P.Li,H.Sun,M.Wang,Y.Xia,C.Lin,P.Zhao*,H.Wang,Chemical vapor deposition growth of scalable monolayer polycrystalline graphene films with millimeter-sized domains.Mater.Lett.2018,215,259.
[7]H.Sun,D.Chen,Y.W,Q.Yuan,L.Guo,D.Dai,Y.Xu,P.Zhao,N.Jiang,C.Lin,High quality graphene films with a clean surface prepared by an UV/ozone assisted transfer process.J.Mater.Chem.C 2017,5,1880.
[8]H.Sun,X.Li,Y.Li,G.Chen,Z.Liu,F.Alam,D.Dai,L.Li,L.Tao,J.Xu,Y.Fang,X.Li,P.Zhao,N.Jiang,D.Chen,C.Lin,High-quality monolithic graphene films via laterally stitched growth and structural repair of isolated flakes for transparent electronics.Chem.Mater.2017,29,7808.
[9]S.Du,W.Lu,A.Ali,P.Zhao,K.Shehzad,H.Guo,L.Ma,X.Liu,X.Pi,P.Wang,H.Fang,Z.Xu,C.Gao,Y.Dan,P.Tan,H.Wang,C.Lin,J.Yang,S.Dong,Z.Cheng,E.Li,W.Yin,J.Luo,B.Yu,T.Hasan,Y.Xu,W.Hu,X.Duan,A broadband fluorographene photodetector.Adv.Mater.2017,29,1700463.
[10]Y.Song,J.Zhuang,M.Song,S.Yin,Y.Cheng,X.Zhang,M.Wang,R.Xiang,Y.Xia,S.Maruyama,P.Zhao*,F.Ding,H.Wang,Epitaxial nucleation of CVD bilayer graphene on copper.Nanoscale 2016,8,20001.(featured as issue back cover)
[11]P.Zhao*,Y.Cheng,D.Zhao,K.Yin,X.Zhang,M.Song,S.Yin,Y.Song,P.Wang,M.Wang,Y.Xia,H.Wang,The role of hydrogen in oxygen-assisted chemical vapor deposition growth of millimeter-sized graphene single crystals.Nanoscale 2016,8,7646.
[12]Y.Cheng,Y.Song,D.Zhao,X.Zhang,S.Yin,P.Wang,M.Wang,Y.Xia,S.Maruyama,P.Zhao,H.Wang,Direct identification of multilayer graphene stacks on copper by optical microscopy.Chem.Mater.2016,28,2165.
[13]M.Song,P.Xu,L.Han,X.Wang,Z.Li,X.Shang,X.Wang,H.Wu,P.Zhao*,Y.Song,M.Wang,Enhanced field-emission performance from carbon nanotube emitters on nickel foam cathodes.J.Electro.Mater.2016,45,2299.
[14]X.Chen,R.Xiang,P.Zhao,H.An,T.Inoue,S.Chiashi,S.Maruyama,Chemical vapor deposition growth of large single-crystal bernal-stacked bilayer graphene from ethanol.Carbon 2016,107,852.
[15]X.Chen,P.Zhao,R.Xiang,S.Kim,J.Cha,S.Chiashi,S.Maruyama,Chemical vapor deposition growth of 5 mm hexagonal single-crystal graphene from ethanol.Carbon 2015,94,810.
[16]Y.Song,D.Pan,Y.Cheng,P.Wang,P.Zhao*,H.Wang,Growth of large graphene single-crystal inside a restricted chamber by chemical vapor deposition.Carbon 2015,95 1027.
[17]M.Song,P.Xu,Y.Song,X.Wang,Z.Li,X.Shang,H.Wu,P.Zhao*,M.Wang,Water-processed carbon nanotube/graphene hybrids with enhanced field emission properties.AIP Adv.2015,5,097130.
[18]S.Kim,P.Zhao,S.Aikawa,E.Einarsson,S.Chiashi,S.Maruyama,Highly stable and tunable n-Type graphene field-effect transistors with poly(vinyl alcohol)films.ACS Appl.Mater.Interfaces 2015,7,9702.
[19]P.Zhao*,S.Kim.X.Chen,E.Einarsson,M.Wang,Y.Song,H.Wang,S.Chiashi,R.Xiang,S.Maruyama,Equilibrium chemical vapor deposition growth of bernal-stacked bilayer graphene.ACS Nano 2014,8,11631.
[20]P.Zhao,B.Hou,X.Chen,S.Kim,S.Chiashi,E.Einarsson,S.Maruyama,Investigation of non-segregation graphene growth on Ni via isotope-labeled alcohol catalytic chemical vapor deposition.Nanoscale 2013,5,6530.
[21]G.Zhang,M.Song,Z.Li,P.Zhao,Z.Gu,H.Wang,Y.Xu,M.Wang,A novel heat dissipation material for high-brightness light-emitting-diode devices.Mater.Chem.Phys.2013,139,741.
[22]K.Cui,T.Chiba,S.Omiya,T.Thurakitseree,P.Zhao,S.Fujii,H.Kataura,E.Einarsson,S.Chiashi,S.Maruyama,Self-assembled microhoneycomb network of single-walled carbon nanotubes for solar cells.J.Phys.Chem.Lett.2013,4,2571.
[23]P.Zhao,A.Kumamoto,S.Kim,X.Chen,B.Hou,S.Chiashi,E.Einarsson,Y.Ikuhara,S.Maruyama,Self-limiting chemical vapor deposition growth of monolayer graphene from ethanol.J.Phys.Chem.C 2013,117,10755.
[24]R.Xiang,B.Hou,E.Einarsson,P.Zhao,S.Harish,K.Morimoto,Y.Miyauchi,S.Chiashi,Z.Tang,S.Maruyama,Carbon atoms in ethanol do not contribute equally to formation of single-walled carbon nanotubes.ACS Nano 2013,7,3095.
[25]T.Thuraketseree,C.Kramberger,P.Zhao,S.Chiashi,E.Einarsson,S.Maruyama,Reduction of single-walled carbon nanotube diameter to sub-nm via feedstock.Phys.Status Solidi B 2012,249,2404.
[26]S.Harish,K.Ishikawa,E.Einarsson,S.Aikawa,T.Inoue,P.Zhao,M.Watanabe,S.Chiashi,J.Shiomi,S.Maruyama,Temperature dependent thermal conductivity increase of aqueous nanofluid with single walled carbon nanotube inclusion.Mater.Express 2012,2,213.
[27]T.Thurakitseree,C.Kramberger,P.Zhao,S.Aikawa,S.Harish,S.Chiashi,E.Einarsson,S.Maruyama,Diameter-controlled and nitrogen-doped vertically aligned single-walled carbon nanotubes.Carbon 2012,50,2635.
[28]R.Watahiki,T.Shimada,P.Zhao,S.Chiashi,S.Iwamoto,Y.Aikawa,S.Maruyama,Y.K.Kato,Enhancement of carbon nanotube photoluminescence by photonic crystal nnaocavities.Appl.Phys.Lett.2012,101,141124.
[29]P.Zhao,E.Einarsson,G.Lagoudas,J.Shiomi,S.Chiashi,S.Maruyama,Tunable separation of single-walled carbon nanotubes by dual-surfactant density graphene ultracentrifugation.Nano Res.2011,4,623.
[30]T.Thurakitseree,E.Einarsson,R.Xiang,P.Zhao,S.Aikawa,S.Chiashi,J.Shiomi,S.Maruyama,Diameter-controlled chemical vapor deposition synthesis of single-walled carbon nanotubes.J.Nanosci.Nanotechnol.2011,11,1.
[31]P.Zhao,E.Einarsson,R.Xiang,Y.Murakami,S.Chiashi,S.Maruyama,Isotope-induced elastic scattering of optical phonons in individual suspended single-walled carbon nanotubes.Appl.Phys.Lett.2011,99,093104.
[32]P.Zhao,E.Einarsson,R.Xiang,Y.Murakami,S.Maruyama,Controllable expansion of single-walled carbon nanotube dispersion using density gradient ultracentrifugation.J.Phys.Chem.C 2011,114,4831.
[33]X.Shang,J.Zhou,P.Zhao,Z.Li,S.Qu,Y.Xu,M.Wang,The enhanced field-emission properties of screen-printed single-wall carbon-nanotube film by electrostatic field.Appl.Sur.Sci.2010,256,2005.
[34]Z.Li,Y.Jiang,P.Zhao,X.Shang,H.Yang,M.Wang,Synthesis of single-walled carbon nanotube films with large area and high purity by arc-discharge.Acta Phys.Chim.Sin.2009,25,2395.
[35]P.Zhao,Z.Li,X.Shang,H.Wang,J.Zhou,M.Wang,Synthesis by arc-discharge method and electrochemical lithium insertion properties of double-walled carbon nanotubes.Russ.J.Electrochem.2008,44,1333.
[36]X.Shang,M.Wang,S.Qu,P.Zhao,J.Zhou,Y.Xu,M.Tan,Z.Li,A model calculation of the tip field distribution for a carbon nanotube array and the optimum intertube distance.Nanotechnology 2008,19,065708.
[37]P.Zhao,X.Shang,Y.Ma,J.Zhou,Z.Gu,Z.Li,Y.Xu,M.Wang,High-current density field emission display fabricated from single-walled carbon nanotube electron sources.Eur.Phys.J.Appl.Phys.2008,42,251.