1. Huang Y, Duan X, Cui Y, Lauhon LJ, Kim K-H, Lieber CM. Logic Gates and Computation from Assembled Nanowire Building Blocks. Science. 2001;294(5545):1313-1317.
2. Cui Y, Lieber CM. Functional Nanoscale Electronic Devices Assembled Using Silicon Nanowire Building Blocks. Science. 2001;291(5505):851-853.
3. Cui Y, Duan X, Hu J, Lieber CM. Doping and Electrical Transport in Silicon Nanowires. The Journal of Physical Chemistry B. 2000;104(22):5213-5216.
4. Qu Y, Liao L, Li Y, Zhang H, Huang Y, Duan X. Electrically conductive and optically active porous silicon nanowires. Nano Lett. 2009;9(12):4539-4543.
5. Huang R-G, Tham D, Wang D, Heath JR. High performance ring oscillators from 10-nm wide silicon nanowire field-effect transistors. Nano Research. 2011;4(10):1005-1012.
6. Wang D, Sheriff BA, McAlpine M, Heath JR. Development of ultra-high density silicon nanowire arrays for electronics applications. Nano Research. 2008;1(1):9-21.
7. Tang J, Wang H-T, Lee DH, Fardy M, Huo Z, Russell TP, et al. Holey Silicon as an Efficient Thermoelectric Material. Nano Lett. 2010;10(10):4279-4283.
8. Jeong S, Garnett EC, Wang S, Yu Z, Fan S, Brongersma ML, et al. Hybrid Silicon Nanocone–Polymer Solar Cells. Nano Lett. 2012;12(6):2971-2976.
9. Garnett E, Yang P. Light Trapping in Silicon Nanowire Solar Cells. Nano Lett. 2010;10(3):1082-1087.
10. Qu Y, Duan X. Progress, challenge and perspective of heterogeneous photocatalysts. Chem Soc Rev. 2013;42(7):2568-2580.
11. Thiyagu S, Devi BP, Pei Z. Fabrication of large area high density, ultra-low reflection silicon nanowire arrays for efficient solar cell applications. Nano Research. 2011;4(11):1136-1143.
12. Gunawardena J. Silicon dreams of cells into symbols. Nat Biotechnol. 2012;30(9):838-840.
13. Qing Q, Pal SK, Tian B, Duan X, Timko BP, Cohen-Karni T, et al. Nanowire transistor arrays for mapping neural circuits in acute brain slices. Proc Natl Acad Sci USA. 2010;107(5):1882-1887.
14. Wang G, Ling Y, Wang H, Xihong L, Li Y. Chemically modified nanostructures for photoelectrochemical water splitting. Journal of Photochemistry and Photobiology C: Photochemistry Reviews. 2014;19:35-51.
15. Wang G, Ling Y, Li Y. Oxygen-deficient metal oxide nanostructures for photoelectrochemical water oxidation and other applications. Nanoscale. 2012;4(21):6682.
16. Zhou H, Qu Y, Zeid T, Duan X. Towards highly efficient photocatalysts using semiconductor nanoarchitectures. Energy and Environmental Science. 2012;5(5):6732.
17. Qu Y, Zhong X, Li Y, Liao L, Huang Y, Duan X. Photocatalytic Properties of Porous Silicon Nanowires. J Mater Chem. 2010;20(18):3590-3594.
18. Wang P, Han L, Zhu C, Zhai Y, Dong S. Aqueous-phase synthesis of Ag-TiO2-reduced graphene oxide and Pt-TiO2-reduced graphene oxide hybrid nanostructures and their catalytic properties. Nano Research. 2011;4(11):1153-1162.
19. Bai J, Zhong X, Jiang S, Huang Y, Duan X. Graphene nanomesh. Nature nanotechnology. 2010;5(3):190-194.
20. Bai J, Cheng R, Xiu F, Liao L, Wang M, Shailos A, et al. Very large magnetoresistance in graphene nanoribbons. Nature nanotechnology. 2010;5(9):655-659.
21. Liao L, Lin Y-C, Bao M, Cheng R, Bai J, Liu Y, et al. High-speed graphene transistors with a self-aligned nanowire gate. Nature. 2010;467(7313):305-308.
22. Liao L, Bai J, Cheng R, Lin Y-C, Jiang S, Huang Y, et al. Top-gated graphene nanoribbon transistors with ultrathin high-k dielectrics. Nano Lett. 2010;10(5):1917-1921.
23. Liu Y, Cheng R, Liao L, Zhou H, Bai J, Liu G, et al. Plasmon resonance enhanced multicolour photodetection by graphene. Nature communications. 2011;2:579-579.
24. Wang G, Qian F, Saltikov CW, Jiao Y, Li Y. Microbial reduction of graphene oxide by Shewanella. Nano Research. 2011;4(6):563-570.
25. Wang B, Liddell KL, Wang J, Koger B, Keating CD, Zhu J. Oxide-on-graphene field effect bio-ready sensors. Nano Research. 2014;7(9):1263-1270.
26. Li X, Li J, Zhou X, Ma Y, Zheng Z, Duan X, et al. Silver nanoparticles protected by monolayer graphene as a stabilized substrate for surface enhanced Raman spectroscopy. Carbon. 2014;66:713-719.
27. Chen S, Brown L, Levendorf M, Cai W, Ju S-Y, Edgeworth J, et al. Oxidation Resistance of Graphene-Coated Cu and Cu/Ni Alloy. ACS Nano. 2011;5(2):1321-1327.
28. Xiang Q, Yu J. Graphene-Based Photocatalysts for Hydrogen Generation. The Journal of Physical Chemistry Letters. 2013;4(5):753-759.
29. Xiang Q, Yu J, Jaroniec M. Graphene-based semiconductor photocatalysts. Chem Soc Rev. 2012;41(2):782-796.
30. Wu H, Xu M, Da P, Li W, Jia D, Zheng G. WO3–reduced graphene oxide composites with enhanced charge transfer for photoelectrochemical conversion. Physical Chemistry Chemical Physics. 2013;15(38):16138.
31. Bae S, Kim H, Lee Y, Xu X, Park J-S, Zheng Y, et al. Roll-to-roll production of 30-inch graphene films for transparent electrodes. Nature Nanotechnology. 2010;5(8):574-578.
32. Adhyaksa GWP, Prima EC, Lee DK, Ock I, Yatman S, Yuliarto B, et al. Nanoparticles: A Light Harvesting Antenna Using Natural Extract Graminoids Coupled with Plasmonic Metal Nanoparticles for Bio‐Photovoltaic Cells (Adv. Energy Mater. 18/2014). Advanced Energy Materials. 2014;4(18).
33. Croce R, van Amerongen H. Natural strategies for photosynthetic light harvesting. Nat Chem Biol. 2014;10(7):492-501.
34. Otsuki J. Supramolecular approach towards light-harvesting materials based on porphyrins and chlorophylls. Journal of Materials Chemistry A. 2018;6(16):6710-6753.
35. Sommer Márquez AE, Lerner DA, Fetter G, Bosch P, Tichit D, Palomares E. Preparation of layered double hydroxide/chlorophyll a hybrid nano-antennae: a key step. Dalton Trans. 2014;43(27):10521-10528.
36. Gouterman M. Study of the Effects of Substitution on the Absorption Spectra of Porphin. The Journal of Chemical Physics. 1959;30(5):1139-1161.
37. Ceulemans A, Oldenhof W, Gorller-Walrand C, Vanquickenborne LG. Gouterman’s “four-orbital” model and the MCD spectra of high-symmetry metalloporphyrins. Journal of the American Chemical Society. 1986;108(6):1155-1163.
38. Hug H, Bader M, Mair P, Glatzel T. Biophotovoltaics: Natural pigments in dye-sensitized solar cells. Applied Energy. 2014;115:216-225.
39. Wang L, Shi Y, Bai X, Xing Y, Zhang H, Wang L, et al. From marine plants to photovoltaic devices. Energy Environ Sci. 2014;7(1):343-346.
40. Wang X-F, Tamiaki H. Cyclic tetrapyrrole based molecules for dye-sensitized solar cells. Energy Environ Sci. 2010;3(1):94-106.
41. Chen S-Y, Lu Y-Y, Shih F-Y, Ho P-H, Chen Y-F, Chen C-W, et al. Biologically inspired graphene-chlorophyll phototransistors with high gain. Carbon. 2013;63:23-29.
42. Hecht DS, Ramirez RJA, Briman M, Artukovic E, Chichak KS, Stoddart JF, et al. Bioinspired Detection of Light Using a Porphyrin-Sensitized Single-Wall Nanotube Field Effect Transistor. Nano Lett. 2006;6(9):2031-2036.
43. Miyasaka T, Watanabe T, Fujishima A, Honda K. Highly efficient quantum conversion at chlorophyll a–lecithin mixed monolayer coated electrodes. Nature. 1979;277(5698):638-640.
44. Cai J, Wang J, Tian D, Huang J, Jiang L. Morphology-controlled self-assembled nanostructures of a porphyrin derivative and their photoelectrochemical properties. RSC Adv. 2014;4(8):4063-4068.
45. Feng Y, Cheng H, Han J, Zheng X, Liu Y, Yang Y, et al. Chlorophyll sensitized BiVO4 as photoanode for solar water splitting and CO2 conversion. Chin Chem Lett. 2017;28(12):2254-2258.
46. Barazzouk S, Kamat PV, Hotchandani S. Photoinduced Electron Transfer between Chlorophyll a and Gold Nanoparticles. The Journal of Physical Chemistry B. 2004;109(2):716-723.
47. Kumari M, Sharma OP, Bagri RK, Nathawat BDS. Management of wilt disease of lentil through bio control agents and organic amendments in Rajasthan. Journal of Pharmacognosy and Phytochemistry. 2020;9(5):3248-3252.
48. Muhammad Asyraf Al-Wafiy L, Mohd Zaki Mohd Y, Suraya Ahmad K, Che Abdullah Che A, Mohd Firdaus M. Author response for “Green synthesis and characterisation of ZnO from citrus hystrix extracts for photocatalytic application”. IOP Publishing; 2024.
49. Aziz C, Othman MA, Amer A, Ghanim AM, Swillam MA. Fabrication of crystalline silicon nanowires coated with graphene from graphene oxide on amorphous silicon substrate using excimer laser. Heliyon. 2024;10(13):e34023-e34023.
50. Bao X-Q, Fatima Cerqueira M, Alpuim P, Liu L. Silicon nanowire arrays coupled with cobalt phosphide spheres as low-cost photocathodes for efficient solar hydrogen evolution. Chem Commun. 2015;51(53):10742-10745.
51. Selvam M, Sakthipandi K, Suriyaprabha R, Saminathan K, Rajendran V. Synthesis and characterization of electrochemically-reduced graphene. Bull Mater Sci. 2013;36(7):1315-1321.
52. Gebreegziabher GG, Asemahegne AS, Ayele DW, Dhakshnamoorthy M, Kumar A. One-step synthesis and characterization of reduced graphene oxide using chemical exfoliation method. Materials Today Chemistry. 2019;12:233-239.
53. Huang Z, Geyer N, Werner P, de Boor J, Gösele U. Metal‐Assisted Chemical Etching of Silicon: A Review. Adv Mater. 2010;23(2):285-308.
54. Luo X, Wang C, Luo S, Dong R, Tu X, Zeng G. Adsorption of As (III) and As (V) from water using magnetite Fe3O4-reduced graphite oxide–MnO2 nanocomposites. Chem Eng J. 2012;187:45-52.
55. Aziz HM, Al-Mamoori MHK, Aboud LH. Synthesis and Characterization of TiO2-Rgo Nanocomposite by Pulsed Laser Ablation in Liquid (PLAL-Method). Journal of Physics: Conference Series. 2021;1818(1):012206.
56. Hassan EK. Structural and Optical Analysis of Rhodamine 6G Thin Films Prepared by Q-switched Nd: YAG Pulsed Laser Deposition. NeuroQuantology. 2020;18(3):45-50.
57. Al-Nafiey A, Al-Mamoori MHK, Alshrefi SM, shakir AK, Ahmed RT. One step to synthesis (rGO/Ni NPs) nanocomposite and using to adsorption dyes from aqueous solution. Materials Today: Proceedings. 2019;19:94-101.
58. Hutagalung SD, Fadhali MM, Areshi RA, Tan FD. Optical and Electrical Characteristics of Silicon Nanowires Prepared by Electroless Etching. Nanoscale research letters. 2017;12(1):425-425.
59. Ferrari AC, Meyer JC, Scardaci V, Casiraghi C, Lazzeri M, Mauri F, et al. Raman Spectrum of Graphene and Graphene Layers. Phys Rev Lett. 2006;97(18).
60. Gupta A, Chen G, Joshi P, Tadigadapa S, Eklund. Raman Scattering from High-Frequency Phonons in Supported n-Graphene Layer Films. Nano Lett. 2006;6(12):2667-2673.
61. Hiura H, Ebbesen TW, Tanigaki K, Takahashi H. Raman studies of carbon nanotubes. Chem Phys Lett. 1993;202(6):509-512.
62. Tan P, Deng Y, Zhao Q. Temperature-dependent Raman spectra and anomalous Raman phenomenon of highly oriented pyrolytic graphite. Physical Review B. 1998;58(9):5435-5439.
63. Pimenta MA, Dresselhaus G, Dresselhaus MS, Cançado LG, Jorio A, Saito R. Studying disorder in graphite-based systems by Raman spectroscopy. Phys Chem Chem Phys. 2007;9(11):1276-1290.
64. Basko DM, Piscanec S, Ferrari AC. Electron-electron interactions and doping dependence of the two-phonon Raman intensity in graphene. Physical Review B. 2009;80(16).
65. Wilkinson GR. R. J. H. Clark and R. E. Hester (Editors). Advances in infrared and Raman spectroscopy, vol. 12. Wiley, New York. 1985. Journal of Raman Spectroscopy. 1986;17(6):487-487.
66. Piscanec S, Ferrari AC, Cantoro M, Hofmann S, Zapien JA, Lifshitz Y, et al. Raman Spectrum of silicon nanowires. Materials Science and Engineering: C. 2003;23(6-8):931-934.
67. Li B, Yu D, Zhang S-L. Raman spectral study of silicon nanowires. Physical Review B. 1999;59(3):1645-1648.
68. Wang JN. An investigation of the deformation mechanism in grain size-sensitive Newtonian creep. Acta Mater. 2000;48(7):1517-1531.
69. Zhang S-L, Ding W, Yan Y, Qu J, Li B, Li L-y, et al. Variation of Raman feature on excitation wavelength in silicon nanowires. Appl Phys Lett. 2002;81(23):4446-4448.
70. Yu DP, Bai ZG, Ding Y, Hang QL, Zhang HZ, Wang JJ, et al. Nanoscale silicon wires synthesized using simple physical evaporation. Appl Phys Lett. 1998;72(26):3458-3460.
71. Hofmann S, Ducati C, Neill RJ, Piscanec S, Ferrari AC, Geng J, et al. Gold catalyzed growth of silicon nanowires by plasma enhanced chemical vapor deposition. J Appl Phys. 2003;94(9):6005-6012.
72. Gupta R, Xiong Q, Adu CK, Kim UJ, Eklund PC. Laser-Induced Fano Resonance Scattering in Silicon Nanowires. Nano Lett. 2003;3(5):627-631.
73. Habubi NF, Abd AN, Dawood MO, Reshak AH. Fabrication and Characterization of a p-AgO/PSi/n-Si Heterojunction for Solar Cell Applications. Silicon. 2016;10(2):371-376.