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DAFTAR PUSTAKA

Adam, F., Ahmed, A. E., dan Min, S. L. (2008). Silver modified porous silica from rice husk and its catalytic potential. Journal of porous materials, 15(4), 433-444.

Adam, F., Appaturi, J. N., Thankappan, R., dan Nawi, M. A. M. (2010). Silica–tin nanotubes prepared from rice husk ash by sol–gel method: Characterization and its photocatalytic activity. Applied Surface Science, 257(3), 811-816.

Adam, F., Chew, T. S., dan Andas, J. (2011). A simple template-free sol–gel synthesis of spherical nanosilica from agricultural biomass. Journal of sol-gel science and technology, 59(3), 580-583.

Adam, F., dan Iqbal, A. (2010). The oxidation of styrene by chromium–silica heterogeneous catalyst prepared from rice husk. Chemical Engineering Journal, 160(2), 742-750.

Agbagla-Dohnani, A., Nozière, P., Clément, G., dan Doreau, M. (2001). In sacco degradability, chemical and morphological composition of 15 varieties of European rice straw. Animal feed science and technology, 94(1), 15-27.

Al-Hasani, T. J., Mihsen, H. H., Hello, K. M., dan Adam, F. (2013). Catalytic esterification via silica immobilized p-phenylenediamine and dithiooxamide solid catalysts. Arabian Journal of Chemistry.

Ali, M. (2011). Rembesan Air Lindi (Leachate) Dampak Pada Tanaman Pangan dan Kesehatan. Surabaya: UPN “Veteran” Jawa Timur.

Alibaba. (2014). Kimia Harga Kalium Silikat. [Online]. Tersedia di:

http://m.indonesian.alibaba.com/goods/chemical-potassium-silicate-price.html. Diakses 17 Agustus 2016.

Amrullah. (2015). Pengaruh Nano Silika Terhadap Pertumbuhan, Respon Morfofisiologi dan Produktivitas Tanaman Padi (Oryza Sativa L.). Bogor: Institut Pertanian Bogor.

Ang, T. N., Ngoh, G. C., dan Chua, A. S. (2012). Comparative study of various pretreatment reagents on rice husk and structural changes assessment of the optimized pretreated rice husk. Bioresource technology, 135, 116-119.

Arutanti, O., Arif, A. F., Balgis, R., Ogi, T., Iskandar, F., dan Okuyama, K. (2016). Tailored Synthesis of Macroporous Pt/WO3 Photocatalyst with Nanoaggregates via Flame Assisted Spray Pyrolysis. AIChE Journal.

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Badan Pusat Statistik. (2015). Produksi padi menurut provinsi (ton), 1993-2015. [Online]. Tersedia di:https://www.bps.go.id/linkTableDinamis/view/id/865. Diakses 20 Juli 2016.

Binod, P., Sindhu, R., Singhania, R. R., Vikram, S., Devi, L., Nagalakshmi, S., dan Pandey, A. (2010). Bioethanol production from rice straw: an overview.Bioresource technology, 101(13), 4767-4774.

Chiang, C. Y., Aroh, K., dan Ehrman, S. H. (2012). Copper oxide nanoparticle made by flame spray pyrolysis for photoelectrochemical water splitting–Part I. CuO nanoparticle preparation. International journal of hydrogen energy, 37(6), 4871-4879.

Darmawan, Kyuma, K., Saleh, A., Subagjo, H., Masunaga, T., dan Wakatsuki, T. (2006). Effect of long-term intensive rice cultivation on the available silica content of sawah soils: Java Island, Indonesia. Soil science and plant nutrition, 52(6), 745-753.

Della, V. P., Kühn, I., dan Hotza, D. (2002). Rice husk ash as an alternate source for active silica production. Materials Letters, 57(4), 818-821.

Ding, Y., dan Su, D. (2012). Purifying Native In-Situ Mastoid SiO 2 from Rice Husk. Energy procedia, 16, 1269-1274.

Gallis, K. W., Eklund, A. G., Jull, S. T., Araujo, J. T., Moore, J. G., dan Landry, C. C. (2000). The Use of Mesoporous Silica in Liquid Chromatography. Studies in Surface Science and Catalysis, 129, 747-755.

Gu, S., Zhou, J., Luo, Z., Wang, Q., dan Ni, M. (2013). A detailed study of the effects of pyrolysis temperature and feedstock particle size on the preparation of nanosilica from rice husk. Industrial crops and products, 50, 540-549.

Hao, L., Gong, X., Xuan, S., Zhang, H., Gong, X., Jiang, W., dan Chen, Z. (2006). Controllable fabrication and characterization of biocompatible core-shell particles and hollow capsules as drug carrier. Applied surface science, 252(24), 8724-8733.

Hendayana, S., Kadarohman, A., Sumarna, A., dan Supriatna, A. (1994). Kimia Analitik Instrumen Edisi Kesatu. Semarang: IKIP Semarang Press.

Hessien, M. M., Rashad, M. M., Zaky, R. R., Abdel-Aal, E. A., dan El-Barawy, K. A. (2009). Controlling the synthesis conditions for silica nanosphere from semi-burned rice straw. Materials science and engineering: B, 162(1), 14-21.

Husnain, Rochayati, S., dan Adamy, I. (2010). Pengelolaan Hara Silika pada Tanah Pertanian di Indonesia. Badan Litbang Pertanian, 237-246.

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Kamath, S. R., dan Proctor, A. (1998). Silica gel from rice hull ash: preparation and characterization. Cereal Chemistry, 75(4), 484-487.

Khopkar, S. M. (2010). Konsep Dasar Kimia Analitik. Jakarta: Penerbit Universitas Indonesia (UI-Press).

Khorsand, H., Kiayee, N., dan Masoomparast, A. (2012). Rice straw ash- A novel source of silica nanoparticles. Journal of mechanical research and application, 4(3), 1-9.

Kikuchi, R. (1999). Application of coal ash to environmental improvement: transformation into zeolite, potassium fertilizer, and FGD absorbent.Resources, Conservation and Recycling, 27(4), 333-346.

Kongmanklang, C., dan Rangsriwatananon, K. (2015). Hydrothermal Synthesis of High Crystalline Silicalite from Rice Husk Ash. Journal of spectroscopy.

Krishnarao, R. V., Subrahmanyam, J., dan Kumar, T. J. (2001). Studies on the formation of black particles in rice husk silica ash. Journal of the European Ceramic Society, 21(1), 99-104.

Kumar, A., Singha, S., Dasgupta, D., Datta, S., dan Mandal, T. (2015). Simultaneous recovery of silica and treatment of rice mill wastewater using rice husk ash: an economic approach. Ecological engineering, 84, 29-37.

Kyuma K. 2004. Paddy Soil Science. Kyoto University Press and Trans Pacific Press. Melbourne. 280

Li, D., Chen, D., dan Zhu, X. (2011). Reduction in time required for synthesis of high specific surface area silica from pyrolyzed rice husk by precipitation at low pH. Bioresource technology, 102(13), 7001-7003.

Liu, Y., Guo, Y., Zhu, Y., An, D., Gao, W., Wang, Z., Ma, Y., dan Wang, Z. (2011). A sustainable route for the preparation of activated carbon and silica from rice husk ash. Journal of hazardous materials, 186(2), 1314-1319.

Londeree, D. J. (2002). Silica-titania composites for water treatment (Doctoral dissertation, University of Florida).

Lu, P. dan Hsieh, Y. L. (2012). Highly pure amorphous silica nano-disks from rice straw. Powder technology, 225, 149-155.

Ma, J. F., dan Takahashi, E. (2002). Soil, fertilizer, and plant silicon research in Japan. Elsevier.

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Mädler, L., Kammler, H. K., Mueller, R., dan Pratsinis, S. E. (2002). Controlled synthesis of nanostructured particles by flame spray pyrolysis. Journal of Aerosol Science, 33(2), 369-389.

Makarim, A.K., E. Suhartatik, A. Kartohardjono. (2007). Silikon: Hara penting pada sistem produksi padi. Iptek Tanaman Pangan, 2(2), 195-204.

Matychenkov, V. V., Pinskiy, D. L., dan Bocharnikova, Y. A. (1995). Influence of mechanical compaction of soils on the state and form of available silicon. Eurasian soil science, 27(12), 58-67.

Miessller, G. L. dan Tarr, D. A. (2004). Inorganic Chemistry 3rd Edition. Minnesota: Pearson Education International.

Miller, F. A. dan Wilkins, C. H. (1952). Infrared spectra and characteristic frequencies of inorganic ions. Analytical chemistry, 24(8), 1253-1294.

Minnermann, M., Grossmann, H. K., Pokhrel, S., Thiel, K., Hagelin-Weaver, H., Bäumer, M., dan Mädler, L. (2013). Double flame spray pyrolysis as a novel technique to synthesize alumina-supported cobalt Fischer–Tropsch catalysts.Catalysis today, 214, 90-99.

Morsy, F. A., El-Sheikh, S. M., dan Barhoum, A. (2014). Nano-silica and SiO 2/CaCO 3 nanocomposite prepared from semi-burned rice straw ash as modified papermaking fillers. Arabian Journal of Chemistry.

Nakashima, H., Omae, K., Takebayashi, T., Ishizuka, C., and Uemura, T. (1998). Toxicity of silicon compounds in semiconductor industries. Journal of occupational health, 40(4), 270-275.

Noushad, M., Ab Rahman, I., Zulkifli, N. S. C., Husein, A., dan Mohamad, D. (2014). Low surface area nanosilica from an agricultural biomass for fabrication of dental nanocomposites. Ceramics international, 40(3), 4163-4171.

Rafiee, E. dan Shahebrahimi, S. (2012). Nano silica with high surface area from rice husk as a support for 12-tungstophosphoric acid: an efficient nano catalyst in some organic reactions. Chinese Journal of Catalysis, 33(7), 1326-1333.

Rohatgi, K., Prasad, S. V., dan Rohatgi, P. K. (1987). Release of silica-rich particles from rice husk by microbial fermentation. Journal of materials science letters, 6(7), 829-831.

Rosmarkam, A., dan Yuwono, N. W. (2002). Ilmu kesuburan tanah. Kanisius.

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Saxena, A., Tripathi, R. M., dan Singh, R. P. (2010). Biological synthesis of silver nanoparticles by using onion (Allium cepa) extract and their antibacterial activity. Dig J Nanomater Bios, 5(2), 427-432.

Setiabudi A., Hardian, R, dan Mudzakir, A. (2012). Karakterisasi material: prinsip dan aplikasinya dalam penelitian kimia. Bandung : UPI Press.

Silverstein, R. M., Webster, F. X., dan Kiemle, D. J. (2005). Spectrometric Identification of Organic Compounds, Seventh Edition. New York: John Wiley dan Sons, Inc.

Simonsen, M. E., Sønderby, C., Li, Z., dan Søgaard, E. G. (2009). XPS and FT-IR investigation of silicate polymers. Journal of materials science, 44(8), 2079-2088.

Vaibhav, V., Vijayalakshmi, U., dan Roopan, S. M. (2015). Agricultural waste as a source for the production of silica nanoparticles. Spectrochimica acta part A: Molecular and biomolecular spectroscopy, 139, 515-520.

Velmurugan, P., Shim, J., Lee, K. J., Cho, M., Lim, S. S., Seo, S. K., dan Oh, B. T. (2015). Extraction, characterization, and catalytic potential of amorphous silica from corn cobs by sol-gel method. Journal of industrial and engineering chemistry, 29, 298-303.

Wattanasiriwech, S., Wattanasiriwech, D., dan Svasti, J. (2010). Production of amorphous silica nanoparticles from rice straw with microbial hydrolysis pretreatment. Journal of non-crystalline solids, 356(25), 1228-1232.

Wu, L., dan Liu, M. (2007). Slow-release potassium silicate fertilizer with the function of superabsorbent and water retention. Industrial dan Engineering Chemistry Research, 46(20), 6494-6500.

Yao, Y., Yoneyama, T., dan Hayashi, H. (2003). Potassium uptake by Chinese cabbage (Brassica pekinensis Rupy.) from fused potassium silicate, a slow-releasing fertilizer. Plant and soil, 249(2), 279-286.

Yukamgo, E. dan Yuwono, N. W. (2007). Peran Silikon Sebagai Unsur Bermanfaat pada Tanaman Tebu. Jurnal Ilmu Tanah dan Lingkungan, 7(2), 103-116.

Yunita, R. P. (2015). Pengaruh Konsentrasi Ekstrak Abu Sekam dan Pupuk Kalium Terhadap Viabilitias dan Daya Simpan Benih Kedelai. Jember: Universitas Jember.

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Zaky, R. R., Hessien, M. M., El-Midany, A. A., Khedr, M. H., Abdel-Aal, E. A., dan El-Barawy, K. A. (2008). Preparation of silica nanoparticles from semi-burned rice straw ash. Powder technology, 185(1), 31-35.

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