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activity of β-MnO 2 nanorods: effect of the Mn valence in the precursor on the crystal structure
and electrode activity of manganates. J Phys Chem C 113(51):21274–21282
Kyung-Hoon L, Young-Woo L, A-Ra K, Cao G, Kyung-Won P (2013) Single-crystalline mesoporous molybdenum nitride nanowires with improved electrochemical properties. J Am Ceramic
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storage. Nano Energy 37:108–117
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Ma J, Wang K, Zhan MS (2015) Growth mechanism, electrical and magnetic properties of Ag-Fe 3 O 4
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McCammon C (1997) Perovskite as a possible sink for ferric iron in the lower mantle. Nature
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J Phys Chem Lett 3(19):2815–2821
Minami T, Nishi Y, Miyata T (2013) High-efficiency Cu 2 O-based heterojunction solar cells
fabricated using a Ga 2 O 3 thin film as n-type layer. Appl Phys Express 6(4):044101
Mittiga A, Salza E, Sarto F, Tucci M, Vasanthi R (2006) Heterojunction solar cell with 2% efficiency
based on a Cu 2 O substrate. Appl Phys Lett 88(16):163502
Moreno C, Vilas-Varela M, Kretz B, Garcia-Lekue A, Costache MV, Paradinas M, Panighel M,
Ceballos G, Valenzuela SO, PeãA D (2018) Bottom-up synthesis of multifunctional nanoporous
graphene. Science 360(6385):199–203
Mudusu D, Nandanapalli KR, Dugasani SR, Kang JW, Park SH, Tu CW (2017) Growth of singlecrystalline cubic structured tin (II) sulfide (SnS) nanowires by chemical vapor deposition. RSC
Adv 7(66):41452–41459
Nam KT, Kim D-W, Yoo PJ, Chiang C-Y, Meethong N, Hammond PT, Chiang Y-M, Belcher AM
(2006) Virus-enabled synthesis and assembly of nanowires for lithium ion battery electrodes.
Science 312(5775):885–888
Niu C, Meng J, Han C, Zhao K, Yan M, Mai L (2014) VO2 nanowires assembled into hollow
microspheres for high-rate and long-life lithium batteries. Nano Lett 14(5):2873–2878
Niu C, Meng J, Wang X, Han C, Yan M, Zhao K, Xu X, Ren W, Zhao Y, Lin X (2015)
General synthesis of complex nanotubes by gradient electrospinning and controlled pyrolysis.
Nat Commun 6:7402
Ni J, Jiang W, Yu K, Gao Y, Zhu Z (2011) Hydrothermal synthesis of VO (B) nanostructures and
application in aqueous Li-ion battery. Electrochim Acta 56(5):2122–2126
Oh MH, Hyeon T (2013) Galvanic replacement reactions in metal oxide nanocrystals. Science
340(6135):964–968
51
Kadri A, Maiss E, Amsharov N, Bittner AM, Balci S, Kern K, Jeske H, Wege C (2011) Engineered Tobacco mosaic virus mutants with distinct physical characteristics in planta and enhanced
metallization properties. Virus Res 157(1):35–46
Kim IY, Ha HW, Kim TW, Paik Y, Choy JH, Hwang SJ (2014) Origin of improved electrochemical
activity of β-MnO 2 nanorods: effect of the Mn valence in the precursor on the crystal structure
and electrode activity of manganates. J Phys Chem C 113(51):21274–21282
Kyung-Hoon L, Young-Woo L, A-Ra K, Cao G, Kyung-Won P (2013) Single-crystalline mesoporous molybdenum nitride nanowires with improved electrochemical properties. J Am Ceramic
Soc 96(1):37–39
Lai X, Halpert JE, Wang D (2012) Recent advances in micro-/nano-structured hollow spheres for
energy applications: From simple to complex systems. Energy Environ Sci 5(2):5604–5618
Lewis NS (2007) Toward cost-effective solar energy use. Science 315(5813):798–801
Limmer SJ, Seraji S, Forbess MJ, Wu Y, Chou TP, Nguyen C, Cao GZ (2010) Electrophoretic
growth of lead zirconate titanate nanorods. Adv Mater 13(16):1269–1272
Liu J, Wu C, Xiao D, Kopold P, Gu L, Van Aken PA, Maier J, Yu Y (2016) MOF-derived hollow
Co 9 S 8 nanoparticles embedded in graphitic carbon nanocages with superior Li-Ion storage. Small
12(17):2354–2364
Liu X, Chao D, Su D, Liu S, Chen L, Chi C, Lin J, Shen ZX, Zhao J, Mai L (2017) Graphene
nanowires anchored to 3D graphene foam via self-assembly for high performance Li and Na ion
storage. Nano Energy 37:108–117
Li Y, Fu H, Zhang Y, Wang Z, Li X (2014) Kirkendall effect induced one-step fabrication of tubular
Ag/MnOx nanocomposites for supercapacitor application. J Phys Chem C 118(13):6604–6611
Li Q, Liu D, Jia Z, Csetenyi L, Gadd GM (2016) Fungal biomineralization of manganese as a novel
source of electrochemical materials. Current Biol Cb 26(7):950–955
Ma J, Wang K, Zhan MS (2015) Growth mechanism, electrical and magnetic properties of Ag-Fe 3 O 4
core-shell nanowires. Acs Appl Mater Interfaces 7(29):16027–16039
McCammon C (1997) Perovskite as a possible sink for ferric iron in the lower mantle. Nature
387(6634):694
Menzel A, Subannajui K, Bakhda R, Wang Y, Thomann R, Zacharias M (2012) Tuning the growth
mechanism of ZnO nanowires by controlled carrier and reaction gas modulation in thermal CVD.
J Phys Chem Lett 3(19):2815–2821
Minami T, Nishi Y, Miyata T (2013) High-efficiency Cu 2 O-based heterojunction solar cells
fabricated using a Ga 2 O 3 thin film as n-type layer. Appl Phys Express 6(4):044101
Mittiga A, Salza E, Sarto F, Tucci M, Vasanthi R (2006) Heterojunction solar cell with 2% efficiency
based on a Cu 2 O substrate. Appl Phys Lett 88(16):163502
Moreno C, Vilas-Varela M, Kretz B, Garcia-Lekue A, Costache MV, Paradinas M, Panighel M,
Ceballos G, Valenzuela SO, PeãA D (2018) Bottom-up synthesis of multifunctional nanoporous
graphene. Science 360(6385):199–203
Mudusu D, Nandanapalli KR, Dugasani SR, Kang JW, Park SH, Tu CW (2017) Growth of singlecrystalline cubic structured tin (II) sulfide (SnS) nanowires by chemical vapor deposition. RSC
Adv 7(66):41452–41459
Nam KT, Kim D-W, Yoo PJ, Chiang C-Y, Meethong N, Hammond PT, Chiang Y-M, Belcher AM
(2006) Virus-enabled synthesis and assembly of nanowires for lithium ion battery electrodes.
Science 312(5775):885–888
Niu C, Meng J, Han C, Zhao K, Yan M, Mai L (2014) VO2 nanowires assembled into hollow
microspheres for high-rate and long-life lithium batteries. Nano Lett 14(5):2873–2878
Niu C, Meng J, Wang X, Han C, Yan M, Zhao K, Xu X, Ren W, Zhao Y, Lin X (2015)
General synthesis of complex nanotubes by gradient electrospinning and controlled pyrolysis.
Nat Commun 6:7402
Ni J, Jiang W, Yu K, Gao Y, Zhu Z (2011) Hydrothermal synthesis of VO (B) nanostructures and
application in aqueous Li-ion battery. Electrochim Acta 56(5):2122–2126
Oh MH, Hyeon T (2013) Galvanic replacement reactions in metal oxide nanocrystals. Science
340(6135):964–968
