3.2 Others
49
layered structure, porous nanostructures, etc.) based on 1D structure, which can facilitate more direct electron transport pathways and higher surface areas. Accordingly,
1D hetero-nanostructures have played a significant role in the research of energy
nanomaterials. (3) For instance, the electrochemical performance can be enhanced
by controlling the surface area, pore properties, and morphology. Nanostructures
based on metal oxide/sulfides with higher specific surface areas can provide more
electro-active sites and make efficient contact with the electrolyte, leading to a higher
charge and discharge capacity at large current density. (4) For 1D carbon materials,
graphene and CNTs all have remarkable mechanical properties. When they form
composite materials with other materials such as metal oxides/sulfides, the volume
expansion/contraction of these materials can be effectively restrained. Due to these
excellent properties, CNTs or graphene can play a significant role in constructing
electrochemical energy storage devices such as stretchable, compressible, bendable,
and other devices.
References
Albrecht TA, Sauvage F, Bodenez V, Tarascon JM, Poeppelmeier KR (2015) Room temperature
synthesis of the larger power, high silver density cathode material Ag 4 V 2 O 6 F 2 for implantable
cardioverter defibrillators. Cheminform 40(40):60208–63113
And XC, Mao † SS (2007) Titanium dioxide nanomaterials: synthesis, properties, modifications,
and applications. Cheminform 38(41):2891
Atanasova P, Rothenstein D, Schneider JJ, Hoffmann RC, Dilfer S, Eiben S, Wege C, Jeske H, Bill J
(2011) Virus-templated synthesis of zno nanostructures and formation of field-effect transistors.
Adv Mater 23(42):4918–4922
Avci C, Ariñez-Soriano J, Carné-Sánchez A, Guillerm V, Carbonell C, Imaz I, Maspoch D (2016)
Post-synthetic anisotropic wet-chemical etching of colloidal sodalite ZIF crystals. Angew Chem
Int Ed Engl 54(48):14417–14421
Balci S, Bittner AM, Schirra M, Thonke K, Sauer R, Hahn K, Kadri A, Wege C, Jeske H, Kern K
(2009) Catalytic coating of virus particles with zinc oxide. Electrochim Acta 54(22):5149–5154
BãUerlein E (2003) Biomineralization of unicellular organisms: an unusual membrane biochemistry
for the production of inorganic nano- and microstructures. Cheminform 42(6):614–641
Bilecka I, Niederberger M (2010) Microwave chemistry for inorganic nanomaterials synthesis.
Nanoscale 2(8):1358–1374
Cai X, Gao W, Ma M, Wu M, Zhang L, Zheng Y, Chen H, Shi J (2015) A prussian blue-based
core-shell hollow-structured mesoporous nanoparticle as a smart theranostic agent with ultrahigh
pH-responsive longitudinal relaxivity. Adv Mater 27(41):6382–6389
Chen YZ, Liu TH, Chen CY, Liu CH, Chen SY, Wu WW, Wang ZL, He JH, Chu YH, Chueh
YL (2012) Taper PbZr (0.2) Ti (0.8) O 3 nanowire arrays: from controlled growth by pulsed laser
deposition to piezopotential measurements. Acs Nano 6(3):2826–2832
Chen C, Hu X, Wang Z, Xiong X, Hu P, Liu Y, Huang Y (2014) Controllable growth of TiO 2 -B
nanosheet arrays on carbon nanotubes as a high-rate anode material for lithium-ion batteries.
Carbon 69(4):302–310
Chen M, Shen X, Wu Q, Li W, Diao G (2015) Template-assisted synthesis of core–shell α-Fe 2 O 3
@TiO 2 nanorods and their photocatalytic property. J Mater Sci 50(11):4083–4094
Chen YM, Yu L, Lou XW (2016) Hierarchical tubular structures composed of Co 3 O 4 hollow
nanoparticles and carbon nanotubes for lithium storage. Angew Chem Int Ed Engl 55(20):5990–
5993
49
layered structure, porous nanostructures, etc.) based on 1D structure, which can facilitate more direct electron transport pathways and higher surface areas. Accordingly,
1D hetero-nanostructures have played a significant role in the research of energy
nanomaterials. (3) For instance, the electrochemical performance can be enhanced
by controlling the surface area, pore properties, and morphology. Nanostructures
based on metal oxide/sulfides with higher specific surface areas can provide more
electro-active sites and make efficient contact with the electrolyte, leading to a higher
charge and discharge capacity at large current density. (4) For 1D carbon materials,
graphene and CNTs all have remarkable mechanical properties. When they form
composite materials with other materials such as metal oxides/sulfides, the volume
expansion/contraction of these materials can be effectively restrained. Due to these
excellent properties, CNTs or graphene can play a significant role in constructing
electrochemical energy storage devices such as stretchable, compressible, bendable,
and other devices.
References
Albrecht TA, Sauvage F, Bodenez V, Tarascon JM, Poeppelmeier KR (2015) Room temperature
synthesis of the larger power, high silver density cathode material Ag 4 V 2 O 6 F 2 for implantable
cardioverter defibrillators. Cheminform 40(40):60208–63113
And XC, Mao † SS (2007) Titanium dioxide nanomaterials: synthesis, properties, modifications,
and applications. Cheminform 38(41):2891
Atanasova P, Rothenstein D, Schneider JJ, Hoffmann RC, Dilfer S, Eiben S, Wege C, Jeske H, Bill J
(2011) Virus-templated synthesis of zno nanostructures and formation of field-effect transistors.
Adv Mater 23(42):4918–4922
Avci C, Ariñez-Soriano J, Carné-Sánchez A, Guillerm V, Carbonell C, Imaz I, Maspoch D (2016)
Post-synthetic anisotropic wet-chemical etching of colloidal sodalite ZIF crystals. Angew Chem
Int Ed Engl 54(48):14417–14421
Balci S, Bittner AM, Schirra M, Thonke K, Sauer R, Hahn K, Kadri A, Wege C, Jeske H, Kern K
(2009) Catalytic coating of virus particles with zinc oxide. Electrochim Acta 54(22):5149–5154
BãUerlein E (2003) Biomineralization of unicellular organisms: an unusual membrane biochemistry
for the production of inorganic nano- and microstructures. Cheminform 42(6):614–641
Bilecka I, Niederberger M (2010) Microwave chemistry for inorganic nanomaterials synthesis.
Nanoscale 2(8):1358–1374
Cai X, Gao W, Ma M, Wu M, Zhang L, Zheng Y, Chen H, Shi J (2015) A prussian blue-based
core-shell hollow-structured mesoporous nanoparticle as a smart theranostic agent with ultrahigh
pH-responsive longitudinal relaxivity. Adv Mater 27(41):6382–6389
Chen YZ, Liu TH, Chen CY, Liu CH, Chen SY, Wu WW, Wang ZL, He JH, Chu YH, Chueh
YL (2012) Taper PbZr (0.2) Ti (0.8) O 3 nanowire arrays: from controlled growth by pulsed laser
deposition to piezopotential measurements. Acs Nano 6(3):2826–2832
Chen C, Hu X, Wang Z, Xiong X, Hu P, Liu Y, Huang Y (2014) Controllable growth of TiO 2 -B
nanosheet arrays on carbon nanotubes as a high-rate anode material for lithium-ion batteries.
Carbon 69(4):302–310
Chen M, Shen X, Wu Q, Li W, Diao G (2015) Template-assisted synthesis of core–shell α-Fe 2 O 3
@TiO 2 nanorods and their photocatalytic property. J Mater Sci 50(11):4083–4094
Chen YM, Yu L, Lou XW (2016) Hierarchical tubular structures composed of Co 3 O 4 hollow
nanoparticles and carbon nanotubes for lithium storage. Angew Chem Int Ed Engl 55(20):5990–
5993
