1.Huang W.-J.,Chu S.-C., A study on the cementlike properties of municipal waste incineration ashes. Cement and Concrete Research, 2003. 33: p. 1795-1799.
2.Nair L. S.,Laurencin C. T., Biodegradable polymers as biomaterials. Progress in Polymer Science, 2007. 32: p. 762-798.
3.Bordes P., Pollet E.,Avérous L., Nano-biocomposites: Biodegradable polyester/nanoclay systems. Progress in Polymer Science, 2009. 34: p. 125-155.
4.Fukushima K., Abbate C., Tabuani D., Gennari M.,Camino G., Biodegradation of poly(lactic acid) and its nanocomposites. Polymer Degradation and Stability 2009: p. 1-10.
5.Mueller R.-J., Biological degradation of synthetic polyesters—Enzymes as potential catalysts for polyester recycling. Process Biochemistry, 2006. 41: p. 2124-2128.
6.Watanabe M.,Kawai F., Numerical simulation for enzymatic degradation of poly(vinyl alcohol). Polymer Degradation and Stability, 2003. 81: p. 393-399.
7.石橋正, 金井康矩,小山政利, 圖解生物可分解塑膠. 世茂出版有限公司, 2006. 台北.
8.Kulkarni R. K., Pani K. G., Neuman C.,Leonard F., Polylactic acid for surgical implants. Arch. Surg., 1966. 93: p. 839-843.
9.Methta R. C., Jeyanthi R.,Calis S., Biodegradable microspheres as depot system for patenteral delivery of peptide drugs. Journal of Controlled Release, 1994. 29: p. 375-384.
10.Hardonk M. S., Molenaar F.,Nieuwenhuis P., Enzymatic activity toward poly(L-lactic acid) implants. Journal of Biomedical Materials Research, 1990. 24: p. 529-545.
11.Vink E. T. H., Ra′bago K. R., Glassner D. A.,Gruber P. R., Applications of life cycle assessment to NatureWorksTM polylactide (PLA) production. Polymer Degradation and Stability, 2003. 80: p. 403-419.
12.Lunt J., Large-scale production, properties and commercial applications of polylactic acid polymers Polymer Degradation and Stability 1998. 59: p. 145-152.
13.Tang Z., Chen X., Pang X., Yang Y., Zhang X.,Jing X., Stereoselective Polymerization of rac-Lactide Using a Monoethylaluminum Schiff Base Complex. Biomacromolecules, 2004. 5: p. 965-970.
14.Ray S. S., Maiti P., Okamoto M., Yamada K.,Ueda K., New Polylactide/Layered Silicate Nanocomposites. 1. Preparation, Characterization, and Properties. Macromolecules 2002. 35: p. 3104-3110.
15.王崇人, 神奇的奈米科學. 科學發展, 2002. 354: p. 48-51.
16.Krishnamoortli R.,Vaia R. A., Polymer Nanocomposites Synthesis, Characterization and Molding. ACS, 2002: p. 8.
17.Usuki A., Kawasumi M., Kojima Y., Okada A., Kurauchi T.,Kamigaito O., Synthesis of Nylon6-Clay Hybrid. Journal of Materials Research, 1993. 8: p. 1179-1184.
18.Ray S. S.,Bousmina M., Biodegradable polymers and their layered silicate nanocomposites:In greening the 21st century materials world. Progress in Materials Science, 2005. 50: p. 962-1079.
19.Ray S. S.,Okamoto M., Polymer/layered silicate nanocomposites: a review from preparation to processing. Progress in Materials Science, 2003. 28: p. 1539-1641.
20.Miyamoto N., Kawai R., Kuroda K.,Ogawa M., Adsorption and aggregation of a cationic cyanine dye on layered clay minerals. Applied Clay Science, 2000. 16: p. 161-170.
21.Alexandre M.,Dubois P., Polymer-layered silicate nanocomposites: preparation, properties and uses of a new class of materials. Materials Science and Engineering, 2000. 28: p. 1-63.
22.Vaia R. A.,Giannelis E. P., Polymer Melt Intercalation in Organically-Modified Layered Silicates: Model Predictions and Experiment. Macromolecules, 1997. 30: p. 8000-8009.
23.Morgan A. B.,Gilman J. W., Characterization of Polymer-Layered Silicate (Clay) Nanocomposites by Transmission Electron Microscopy and X-Ray Diffraction: A Comparative Study. Journal of Applied Polymer Science, 2003. 87: p. 1329-1338.
24.Carrado K. A., Synthetic organo- and polymer–clays: preparation,characterization, and materials applications. Applied Clay Science, 2000. 17: p. 1-23.
25.Usuki A., Kawasumi M., Kojima Y., Okada A., Kurauchi T.,Kamigaito O., Swelling behavior of montmorillonite cation exchanged for w-amino acids by e-caprolactam. J. Mater. Res, 1993. 8(5): p. 1174-1178.
26.Wang J.-H., Young T.-H., Lin D.-J., Sun M.-K., Huag H.-S.,Cheng L.-P., Preparation of Clay/PMMA Nanocomposites with Intercalated or Exfoliated Structure for Bone Cement Synthesis. Macromol. Mater. Eng., 2006. 291: p. 661-669.
27.Lin J.-J., Cheng I.-J., Wang R.,Lee R.-J., Tailoring Basal Spacings of Montmorillonite by Poly(oxyalkylene)diamine Intercalation. Macromolecules, 2001. 34: p. 8832-8834.
28.Lin J.-J., Hsu Y.-C.,Chou C.-C., Copolymer-Layered Silicate Hybrid Surfactants from the Intercalation of Montmorillonite with Amphiphilic Copolymers. Langmuir, 2003. 19: p. 5184-5187.
29.Lin J.-J., Chen I.-J.,Chou C.-C., Critical Conformational Change of Poly(oxypropylene)diamines in Layered Aluminosilicate Confinement. Macromol. Rapid Commun., 2003. 24: p. 492-495.
30.Chou C.-C., Shieu F.-S.,Lin J.-J., Preparation, Organophilicity, and Self-Assembly of Poly(oxypropylene)amine-Clay Hybrids. Macromolecules, 2003. 36: p. 2187-2189.
31.Lin J.-J.,Chen Y.-M., Amphiphilic Properties of Poly(oxyalkylene)amine-Intercalated Smectite Aluminosilicates. Langmuir, 2004. 20: p. 4261-4264.
32.Chou C.-C., Chang Y.-C., Chiang M.-L.,Lin J.-J., Conformational Change of Trifunctional Poly(oxypropylene)amines Intercalated within a Layered Silicate Confinement. Macromolecules, 2004. 37: p. 473-477.
33.Lin J.-J., Wei J.-C.,Tsai W.-C., Layered Confinement of Protein in Synthetic Fluorinated Mica via Stepwise Polyamine Exchange. J. Phys. Chem. B 2007. 111(34): p. 10275-10280.
34.Ogata N., Jimenez G., Kawai H.,Ogihara T., Structure and Thermal/Mechanical Properties of Poly(l-lactide)-Clay Blend. Journal of Polymer Science: Part B: Polymer Physics., 1997. 35: p. 389-396.
35.Maiti P., Yamada K., Okamoto M., Ueda K.,Okamoto K., New Polylactide/Layered Silicate Nanocomposites: Role of Organoclays. Chem. Mater., 2002. 14: p. 4654-4661.
36.Ray S. S., Yamada K., Okamoto M.,Ueda K., Polylactide-Layered Silicate Nanocomposite: A Novel Biodegradable Material. Nano Letters, 2002. 2(10): p. 1093-1096.
37.Shim j. h., Kim e. s., Joo j. h.,Yoon j. s., Properties and Morphology of Poly(L-lactide)/Caly Composites According to the Clay Modification. Journal of Applied Polymer Science, 2006. 102: p. 4983-4988.
38.Yu Z., Yin J., Yan S., Xie Y., Ma J.,Chen X., Biodegradable Poly(L-lactide)/Poly(e-caprolactone)-modified montmorillonite Nanocomposites: Preparation and Characterization. Polymer, 2007. 48: p. 6439-6447.
39.Hueck H. J., The Biodeterioration of Materials-An Appraisal. International Biodeterioration &; Biodegradation, 2001. 48: p. 5-11.
40.Shah A. A., Hasan F., Hameed A.,Ahmed S., Biological degradation of plastics: A comprehensive review. Biotechnology Advances 2008. 26: p. 246-265.
41.Cappitelli F., Principi P.,Sorlini C., Biodeterioration of modern materials in contemporary collections: can biotechnology help? Trends in Biotechnology, 2006. 24(8): p. 350-354.
42.Bonhommea S., Cuerb A., Delortb A., Lemairea J., Sancelmeb M.,Scott G., Environmental biodegradation of polyethylene. Polymer Degradation and Stability, 2003. 81: p. 441-452.
43.Crispim C. A.,Gaylarde C. C., Cyanobacteria and Biodeterioration of Cultural Heritage: A Review. Microbial Ecology, 2005. 49: p. 1-9.
44.Rubio C., Ott C., Amiel C., Dupont-Moral I., Travert J.,Mariey L., Sulfato/thiosulfato reducing bacteria characterization by FT-IR spectroscopy: A new approach to biocorrosion control. Journal of Microbiological Methods, 2006. 64: p. 287-296.
45.Burkersroda F. v., Schedl L.,G.opferich A., Why degradable polymers undergo surface erosion or bulk erosion. Biomaterials 2002. 23: p. 4221-4231.
46.Tokiwa Y.,Calabia B. P., Biodegradability and biodegradation of poly(lactide). Appl Microbiol Biotechnol 2006. 72: p. 244-251.
47.Pranamuda H., Tokiwa Y.,Tanaka H., Polylactide Degradation by an Amycolatopsis sp. Appilied and Environmental Microbiology, 1997. 63(4): p. 1637-1640.
48.Suyama T., Tokiwa Y., Ouichanpagdee P., Kanagawa T.,Kamagata Y., Phylogenetic Affiliation of Soil Bacteria That Degrade Aliphatic Polyesters Available Commercially as Biodegradable Plastics. Applied and Environmental Microbiology, 1998. 64(12): p. 5008-5011.
49.MacDonald R. T., McCarthy S. P.,Gross R. A., Enzymatic Degradability of Poly(lactide): Effects of Chain Stereochemistry and Material Crystallinity. Macromolecules, 1996. 29: p. 7356-7361.
50.Li S., Girard A., Garreau H.,Vert M., Enzymatic degradation of polylactide stereocopolymers with predominant d-lactyl contents. Polymer Degradation and Stability, 2001. 71: p. 61-67.
51.Zhao Z., Yang L., Hua J., Wei J., Gachet S., Ghzaoui A. E.,Li S., Relationship between Enzyme Adsorption and Enzyme-Catalyzed Degradation of Polylactides. Macromol. Biosci., 2008. 8: p. 25-31.
52.Li S.,McCarthy S., Influence of Crystallinity and Stereochemistry on the Enzymatic Degradation of Poly(lactide)s. Macromolecules, 1999. 32: p. 4454-4456.
53.McLauchlin A. R.,Thomas N. L., Preparation and thermal characterisation of poly(lactic acid) nanocomposites prepared from organoclays based on an amphoteric surfactant. Polymer Degradation and Stability, 2009. 94: p. 868-872.
54.許涵硯, 聚羥基丁酯薄膜及其摻合體之酵素分解行為與機制. 2010年碩士論文, 淡江大學. 台灣.