Functionalized Nano-porous Silicon Surfaces for Energy …
393
Gogotsi Y, Simon P (2011) True performance metrics in electrochemical energy storage. Science
334:917–918
Granitzer P, Rumpf K (2010) Porous silicon-a versatile host material. Materials 3:943–998
Gupta R et al (2011) Application of energy storage devices in power systems. Int J Eng Sci Technol
3:289–297
Herino R, Bomchil G, Barla K, Bertrand C, Ginoux JL (1987) Porosity and pore size distributions
of porous silicon layers. J Electrochem Soc 134, 1994
Ikonen T et al (2017) Electrochemically anodized porous silicon: towards simple and affordable
anode material for Li-ion batteries. Sci Rep 7:1–8
Min-Gi J et al (2016) Nitrogen-doped carbon coated porous silicon as high performance anode
material for lithium-ion batteries. Electrochim Acta 209:299–307
Jha N, Ramesh P, Bekyarova E, Itkis ME, Haddon RC (2012) High energy density supercapacitor
based on a hybrid carbon nanotube-reduced graphite oxide architecture. Adv Energy Mater 2:438–
444
Kumar P, Huber P (2007) Effect of etching parameter on pore size and porosity of electrochemically
formed nanoporous silicon. J Nanomater, Article ID 89718, 4 p
Kumar P (2011) Effect of silicon crystal size on photoluminescence appearance in porous silicon.
ISRN Nanotechnol, Article ID 163168, 6 p
Kumar P et al (2009) Effect of HF concentration on physical and electronic properties of
electrochemically formed nano-porous silicon. J Nanomater, Article ID 728957, 7 p
Liua H, Wang ZL (2005) Etching silicon wafer without hydrofluoric acid. Appl Phys Lett 87:261913
Michler P et al (2000) A quantum dot single-photon turnstile device. Science 290:2282
Oakes L et al (2013) Surface engineered porous silicon for stable, high performance electrochemical
supercapacitors. Sci Rep 3:3020
Obrovac MN, Chevrier VL (2014) Alloy negative electrodes for li-ion batteries. Chem Rev
114:11444–11502
Palestino AG et al (2007) Fluorescence tuning of confined molecules in porous silicon mirrors.
Appl Phys Lett 91:121909
Pelton M et al (2002) Efficient source of single photons: a single quantum dot in a micropost
microcavity. Phys Rev Lett 89:233602
Rowlands SE, Latham RJ, Schlindwein WS (1999) Supercapacitor devices using porous silicon
electrodes. Ionics 5:144–149
Santori C et al (2001) Triggered single photons from a quantum dot. Phys Rev Lett 86:1502
Schuth F, Schmidt W (2002) Microporous and mesoporous materials. Adv Mater 14:629
Smith RL, Collins SD (1992) Porous silicon formation mechanisms. J Appl Phys 71, RI
Thissandier F et al (2012) Highly doped silicon nanowires based electrodes for microelectrochemical
capacitor applications. Electrochem Commun 25:109–111
Thissandier F, Pauc N, Brousse T, Gentile P, Sadki S (2013) Micro-ultracapacitors with highly
doped silicon nanowires electrodes. Nanoscale Res Lett 8:1–5
Ulhir A (1956) Electrolytic shaping of germanium and silicon. Bell Syst Tech J 35:333
Yuan Z et al (2002) Electrically driven single-photon source. Science 295:102
Zhang XG (2004) Morphology and formation mechanisms of porous silicon. J Electrochem Soc
151:C69–C80
Zhu Y et al (2012) A seamless three-dimensional carbon nanotube graphene hybrid material. Nat,
Commun, p 3
Zhu J et al (2014) The application of graphene in lithium ion battery electrode materials. Springer
Plus 3:585
393
Gogotsi Y, Simon P (2011) True performance metrics in electrochemical energy storage. Science
334:917–918
Granitzer P, Rumpf K (2010) Porous silicon-a versatile host material. Materials 3:943–998
Gupta R et al (2011) Application of energy storage devices in power systems. Int J Eng Sci Technol
3:289–297
Herino R, Bomchil G, Barla K, Bertrand C, Ginoux JL (1987) Porosity and pore size distributions
of porous silicon layers. J Electrochem Soc 134, 1994
Ikonen T et al (2017) Electrochemically anodized porous silicon: towards simple and affordable
anode material for Li-ion batteries. Sci Rep 7:1–8
Min-Gi J et al (2016) Nitrogen-doped carbon coated porous silicon as high performance anode
material for lithium-ion batteries. Electrochim Acta 209:299–307
Jha N, Ramesh P, Bekyarova E, Itkis ME, Haddon RC (2012) High energy density supercapacitor
based on a hybrid carbon nanotube-reduced graphite oxide architecture. Adv Energy Mater 2:438–
444
Kumar P, Huber P (2007) Effect of etching parameter on pore size and porosity of electrochemically
formed nanoporous silicon. J Nanomater, Article ID 89718, 4 p
Kumar P (2011) Effect of silicon crystal size on photoluminescence appearance in porous silicon.
ISRN Nanotechnol, Article ID 163168, 6 p
Kumar P et al (2009) Effect of HF concentration on physical and electronic properties of
electrochemically formed nano-porous silicon. J Nanomater, Article ID 728957, 7 p
Liua H, Wang ZL (2005) Etching silicon wafer without hydrofluoric acid. Appl Phys Lett 87:261913
Michler P et al (2000) A quantum dot single-photon turnstile device. Science 290:2282
Oakes L et al (2013) Surface engineered porous silicon for stable, high performance electrochemical
supercapacitors. Sci Rep 3:3020
Obrovac MN, Chevrier VL (2014) Alloy negative electrodes for li-ion batteries. Chem Rev
114:11444–11502
Palestino AG et al (2007) Fluorescence tuning of confined molecules in porous silicon mirrors.
Appl Phys Lett 91:121909
Pelton M et al (2002) Efficient source of single photons: a single quantum dot in a micropost
microcavity. Phys Rev Lett 89:233602
Rowlands SE, Latham RJ, Schlindwein WS (1999) Supercapacitor devices using porous silicon
electrodes. Ionics 5:144–149
Santori C et al (2001) Triggered single photons from a quantum dot. Phys Rev Lett 86:1502
Schuth F, Schmidt W (2002) Microporous and mesoporous materials. Adv Mater 14:629
Smith RL, Collins SD (1992) Porous silicon formation mechanisms. J Appl Phys 71, RI
Thissandier F et al (2012) Highly doped silicon nanowires based electrodes for microelectrochemical
capacitor applications. Electrochem Commun 25:109–111
Thissandier F, Pauc N, Brousse T, Gentile P, Sadki S (2013) Micro-ultracapacitors with highly
doped silicon nanowires electrodes. Nanoscale Res Lett 8:1–5
Ulhir A (1956) Electrolytic shaping of germanium and silicon. Bell Syst Tech J 35:333
Yuan Z et al (2002) Electrically driven single-photon source. Science 295:102
Zhang XG (2004) Morphology and formation mechanisms of porous silicon. J Electrochem Soc
151:C69–C80
Zhu Y et al (2012) A seamless three-dimensional carbon nanotube graphene hybrid material. Nat,
Commun, p 3
Zhu J et al (2014) The application of graphene in lithium ion battery electrode materials. Springer
Plus 3:585
