Critical Literature Review on the Application of Nanoparticles for ph Control in Books and Documents
Published 2024-12-27
Keywords
- nanotechnology,
- deacidification,
- pH control,
- alkaline reserve,
- cellulose
This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.
How to Cite
Abstract
The acidification of cellulose is one of the primary causes of deterioration in books and documents made from wood pulp. This is the main reason why pH control treatments are regularly applied by conservation-restoration professionals, despite the challenges posed by the use of carbonates, bicarbonates, hydroxides, and other compounds for this purpose. This article provides a summary of the practical potential of nanotechnology in paper deacidification processes and reviews the benefits of calcium hydroxide, magnesium hydroxide, carbonate, bicarbonate, and calcium propionate when applied at the nanometric scale.
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References
- Afsharpour, M., e Imani, S. (2017). Preventive protection of paper works by using nanocomposite coating of zinc oxide. Journal of Cultural Heritage, 25, 142-148. https://doi.org/10.1016/j.culher.2016.12.007
- Baglioni, P., y Giorgi, R. (2006). Soft and hard nanomaterials for restoration and conservation of cultural heritage. Soft Matter, 2(4), 293-303. http://pubs.rsc.org/en/content/articlehtml/2006/sm/b516442g
- https://doi.org/10.1039/b516442g
- Baglioni, P., Chelazzi, D., Giorgi, R., Xing, H., y Poggi, G. (2016). Alkaline Nanoparticles for the Deacidification and pH Control of Books and Manuscripts. En P. Dillmann, L. Bellot-Gurlet y I. Nenner (Eds.), Nanoscience and Cultural Heritage (pp. 253-281). Atlantis Press. https://doi.org/10.2991/978-94-6239-198-7_9
- Barrow, W. J., y Sproull, R. C. (1959). Permanence in Book Papers: Investigation of deterioration in modern papers suggests a practical basis for remedy. Science, 129(3356), 1075-1084. https://doi.org/10.1126/science.129.3356.1075
- Baty, J. W., Maitland, C. L., Minter, W., Hubbe, M. A., y Jordan-Mowery, S. K. (2010).
- Deacidification for the conservation and preservation of paper-based works: A review. BioResources, 5(3), 1955-2023.
- https://doi.org/10.15376/biores.5.3.1955-2023
- Bicchieri, M., Valentini, F., Calcaterra, A., y Talamo, M. (2017). Newly Developed Nano-Calcium Carbonate and Nano-Calcium Propanoate for the Deacidification of Library and Archival Materials. Journal of Analytical Methods in Chemistry.
- https://doi.org/10.1155/2017/2372789
- Clark, A. J., Calvillo, J. L., Roosa, M. S., Green, D. B., y Ganske, J. A. (2011). Degradation product emission from historic and modern books by headspace SPME/GC-MS: evaluation of lipid oxidation and cellulose hydrolysis. Analytical and bioanalytical chemistry, 399, 3589-3600.
- https://doi.org/10.1007/s00216-011-4680-5
- Contreras Zamorano, G. (2012). Nuevas tecnologías en la conservación y restauración de obras de arte sobre papel. En A. Rodríguez López (Coord.), M. T. Escohotado Ibor, F. Bazeta Gobantes (Dirs.), Innovación y nuevas tecnologías en la especialidad de conservación y restauración de obras de arte (pp. 70-90). Universidad del País Vasco. https://addi.ehu.es/handle/10810/15528
- Dupont, A. L. (2002). The role of gelatine/alum sizing in the degradation of paper: a study by size exclusion chromatography in lithium chloride/N, N-dimethylacetamide using multiangle light scattering detection. Studies in Conservation, 47(sup3), 59-64. https://doi.org/10.1179/sic.2002.47.s3.012
- Giorgi, R., Dei, L., Ceccato, M., Schettino, C., y Baglioni, P. (2002). Nanotechnologies for Conservation of Cultural Heritage: Paper and Canvas Deacidification. Langmuir, 18(21), 8198-8203.
- https://doi.org/10.1021/la025964d
- Giorgi, R., Bozzi, C., Dei, L., Gabbiani, C., Ninham, B. W., y Baglioni, P. (2005). Nanoparticles of Mg(OH)2: Synthesis and Application to Paper Conservation. Langmuir, 21(18), 8495-8501.
- https://doi.org/10.1021/la050564m
- Gómez Villalba, L.S., López-Arce, P., Fort González, R. y Álvarez de Buergo, M. (2010). La aportación de la nanociencia a la conservación de bienes del patrimonio cultural. Patrimonio cultural de España, 4, 43-56. https://digital.csic.es/bitstream/10261/61290/1/patrimoniocultural_2010_42_43.pdf
- Sánchez Hernampérez, A. (2016) Terror al ácido: el descubrimiento del deterioro y la conservación documental. En M. Cisneros Cunchillos y V. M. Cuñat Ciscar (Eds.), Patrimonio olvidado, patrimonio recuperado (pp. 223-246). Editorial Universidad de Cantabria.
- Jansson, J. (2015). The influence of pH on fiber and paper properties: Different pH levels during beating and sheet forming [Tesis de magister, Karlstad University, Suecia]. Digitala Vetenskapliga Arkivet. http://www.diva-portal.org/smash/record.jsf?pid=diva2%3A823180&dswid=-5500
- Mejias Sánchez, Y., Cabrera Cruz, N., Toledo Fernández, A. M., y Duany Machado, O. J. (2009). La nanotecnología y sus posibilidades de aplicación en el campo científico-tecnológico. Revista Cubana de Salud Pública, 35(3) http://scielo.sld.cu/scielo.php?script=sci_arttext&pid=S0864-34662009000300006
- https://doi.org/10.1590/S0864-34662009000300006
- Muñoz Viñas, S. (2010). La restauración del papel. Tecnos.
- Nanoforart European Project. (2012). Nanoforart. http://www.nanoforart.eu/
- Poggi, G., Sistach, M. C., Marin, E., Garcia, J. F., Giorgi, R., y Baglioni, P. (2016). Calcium hydroxide nanoparticles in hydroalcoholic gelatin solutions (GeolNan) for the deacidification and strengthening of papers containing iron gall ink. Journal of Cultural Heritage, 18, 250-257. https://doi.org/10.1016/j.culher.2015.10.005
- Poggi, G., Toccafondi, N., Melita, L. N., Knowles, J. C., Bozec, L., Giorgi, R., y Baglioni, P. (2014). Calcium hydroxide nanoparticles for the conservation of cultural heritage: new formulations for the deacidification of cellulose-based artifacts. Applied Physics A, 114(3), 685-693. https://doi.org/10.1007/s00339-013-8172-7
- Poole, C. P., y Owens, F. J. (2007). Introducción a la nanotecnología. Reverté.
- Plossi-Zappala, M. (1994). Il propionato di calcio nella deacidificazione e/o stabilizzazione della carta. Cellulosa e carta, 45(3), 53-58.
- Sequeira, S., Casanova, C., y Cabrita, E. J. (2006). Deacidification of paper using dispersions of Ca(OH)2 nanoparticles in isopropanol. Study of efficiency. Journal of Cultural Heritage, 7(4), 264-272. https://doi.org/10.1016/j.culher.2006.04.004
- https://doi.org/10.1016/j.culher.2006.04.004
- Sequeira, S. O., Laia, C. A. T., Phillips, A. J. L., Cabrita, E. J., y Macedo, M. F. (2017). Clotrimazole and calcium hydroxide nanoparticles: A low toxicity antifungal alternative for paper conservation. Journal of Cultural Heritage, 24, 45-52. https://doi.org/10.1016/j.culher.2016.12.004
- https://doi.org/10.1016/j.culher.2016.12.004
- Wang, H., Lu, G., Zhang, J., y Zheng, D. (2013). Multifunctional nanocomposites for paper conservation. Studies in conservation, 58(1), 23-29. https://doi.org/10.1179/2047058412Y.0000000038
- Wójciak, A. (2015). Washing, Spraying and Brushing. A Comparison of Paper Deacidification by Magnesium Hydroxide Nanoparticles. Restaurator. International Journal for the Preservation of Library and Archival Material, 36(1), 3-23. https://doi.org/10.1515/res-2014-0010
- Zervos, S. (2015). Natural and accelerated ageing of cellulose and paper. https://www.academia.edu/66693219/Natural_and_accelerated_ageing_of_cellulose_and_paper
- Zervos, S., y Alexopoulou, I. (2015). Paper conservation methods: a literature review. Cellulose, 22(5), 2859-2897. https://doi.org/10.1007/s10570-015-0699-7