Abstract
Precious organic cultural relics are easily affected by temperature, humidity, and harmful gases in the environment, resulting in embrittlement, fading, mildew, moth damage and other aging forms. An energy-saving and environmentally friendly material is needed to stabilize humidity and adsorb harmful gases in the environment. In this paper, with an intelligent adjustment function, functional paper containing sepiolite and tourmaline natural minerals was successfully prepared. The component of 80 % of wingceltis and 20 % of straw in dry pulp as main raw material was conducive to the desorption of water molecules. As favorable structure inside functional paper, the adsorption point and the adsorption contact area increased by the rough surface of fiber bundles, the addition of sepiolite and the ordered molecular chains of copolymers destroyed. So, the relative humidity could be adjusted to 55 % ± 3 within 2 hours and was stable with functional paper. At the same time, 1.11 ppm sulfur dioxide and 2.98 ppm ammonia could be effectively adsorbed in 10 and 12 h, respectively, by 1 g of paper in a 5 L container. The pH of the paper was adjusted to neutral with tourmaline, even if the pH was changed by acidic or alkaline gas absorption. Therefore, for long-term organic cultural relic preservation, preparing a constant-humidity and clean environment is of great significance. This is possible through this paper.
Funding source: National Natural Science Foundation of China
Award Identifier / Grant number: 51803237
Funding statement: This work was supported by the National Key R&D Program of China (2019YFC1521302), the National Natural Science Foundation of China (51803237), and the Special Funds from the Administration of Cultural Heritage of Zhejiang Province (2018001; 2019004; 2020012).
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Author contributions: Hailiang Yang and Hailing Zheng contributed as two first co-authors.
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Conflict of interest: We declare that we do not have any commercial or associative interest that represents a conflict of interest in connection with the work submitted.
References
Camuffo, D., Grieken, R.V., Busse, H.J. (2001) Environmental monitoring in four European museums. Atmos. Environ. 35(1):127–140.10.1016/S1352-2310(01)00088-7Suche in Google Scholar
Cao, L.F., Yang, H.L., Zhou, Y., Zhao, F., Xu, P.F., Yao, Q.Q, Yu, N., Hu, Z.W., Peng, Z.Q. (2013) A new process for preparation of porous polyacrylamide resins and their humidity control properties. Energy Build. 62:590–596.10.1016/j.enbuild.2013.03.041Suche in Google Scholar
Caturla, F., Molina-Sabio, M., Rodriguez-Reinoso, F. (1999) Adsorption–desorption of water vapor by natural and heat-treated sepiolite in ambient air. Appl. Clay Sci. 15:367–380.10.1016/S0169-1317(99)00030-7Suche in Google Scholar
Chen, S., Song, Y., Xu, F. (2018) Flexible and highly sensitive resistive pressure sensor based on carbonized crepe paper with corrugated structure. ACS Appl. Mater. Interfaces 10:34646–34654.10.1021/acsami.8b13535Suche in Google Scholar
Connolly, E.J., O’Halloran, G.M., Pham, H.T.M., Sarro, P.M., French, P.J. (2002) Comparison of porous silicon, porous polysilicon and porous silicon carbide as materials for humidity sensing applications. Sens. Actuators A, Phys. 99:25–30.10.1016/S0924-4247(01)00885-8Suche in Google Scholar
Hasegawa, T., Iwasaki, S., Shibutani, Y. (2009) Preparation of superior humidity-control materials from kenaf. J. Porous Mater. 16(2):129–134.10.1007/s10934-007-9176-5Suche in Google Scholar
Hu, Z.B., Zheng, S.L., Jia, M.Z. (2017) Preparation and characterization of novel diatomite/ground calcium carbonate composite humidity control material. Adv. Powder Technol. 28(5):1372–1381.10.1016/j.apt.2017.03.005Suche in Google Scholar
Kabir, S.F., Sikdar, P.P., Haque, B. (2018) Cellulose-based hydrogel materials: Chemistry, properties and their prospective applications. Prog. Biomater. 7(3):153–174.10.1007/s40204-018-0095-0Suche in Google Scholar PubMed PubMed Central
Kadoya, T. (1981) The alteration of paper. Sci. Anc. Cult. Prop. 26:81–88 (門屋卓. (1981) 紙の変質について. 古文化財の科学 26:81–88).Suche in Google Scholar
Kalia, S., Dufresen, A., Cherian, B.M. (2011) Cellulose-based bio- and nanocomposites: a review. Int. J. Polym. Sci. 837875–837909.10.1155/2011/837875Suche in Google Scholar
Kang, Y., Wu, Y., Song, L., Ma, C. (2007) Development and experimental research on humidity controlling composite coatings. Paint Coat. Ind. 37(8):26–29.Suche in Google Scholar
Kono, O. (1983) Moisture characteristics of music lights-especially on the initial response. Asahi Glass: Printing Co., pp. 65–75.Suche in Google Scholar
Liang, Y.F., Tang, X.J., Zhu, Q., Han, J.H., Wang, C.P. (2021) A review: Application of tourmaline in environmental fields. Chemosphere 281(11):130780.10.1016/j.chemosphere.2021.130780Suche in Google Scholar PubMed
Maldzius, R., Lozovski, T., Sidaravicius, J. (2020) Influence of environmental relative humidity on the polarization behaviour of paper and paper-dielectric structures. Cellulose 27:10303–10312.10.1007/s10570-020-03457-3Suche in Google Scholar
Morooka, T., Homma, Y., Norimoto, M. (2007) Criterion for estimating humidity control capacity of materials in a room. J. Wood Sci. 53(3):192–198.10.1007/s10086-006-0848-6Suche in Google Scholar
Ohashi, F., Maeda, M., Inukai, K., Suzuki, M., Tomura, S. (1999) Study on intelligent humidity control materials: Water vapor adsorption properties of mesostructured silica derived from amorphous fumed silica. J. Mater. Sci. 34:1341–1346.10.1023/A:1004510417593Suche in Google Scholar
Pavlogeorgatos, G. (2003) Environmental parameters in museums. Build. Environ. 38:1457–1462.10.1016/S0360-1323(03)00113-6Suche in Google Scholar
Qin, M.H., Hou, P.M., Wu, Z.M., Wang, J.T. (2020) Precise humidity control materials for autonomous regulation of indoor moisture. Build. Environ. 169:106581–106591.10.1016/j.buildenv.2019.106581Suche in Google Scholar
Ren, Q., Zeng, Z.Y., Jiang, Z.W., Chen, Q. (2019) Incorporation of bamboo charcoal for cement-based humidity adsorption material. Constr. Build. Mater. 215:244–251.10.1016/j.conbuildmat.2019.04.173Suche in Google Scholar
Staniforth, S., Hayes, B., Bullock, L. (1994) Appropriate technologies for relative humidity control for museum collections housed in historic buildings. Stud. Conserv. 39(2):123–128.10.1179/sic.1994.39.Supplement-2.123Suche in Google Scholar
Tran, Y.T., Lee, J., Kumar, P. (2019) Natural zeolite and its application in concrete composite production. Composites, Part B, Eng. 165:354–364.10.1016/j.compositesb.2018.12.084Suche in Google Scholar
Vu, D.H., Wang, K.S., Bac, B.H. (2011) Humidity control porous ceramics prepared from waste and porous materials. Mater. Lett. 65(6):940–943.10.1016/j.matlet.2011.01.006Suche in Google Scholar
Vu, D.H., Wang, K.S., Bui, H.B. (2011) Humidity control porous ceramics prepared from waste and porous materials. Mater. Lett. 65(6):940–943.10.1016/j.matlet.2011.01.006Suche in Google Scholar
Xu, P.F., Yao, Q.Q., Yu, N., Zhou, Y., Zhao, F., Wang, B., Peng, Z.Q., Hu, Z.W. (2014) Narrow-dispersed Konjac glucomannan nanospheres with high moisture adsorption and desorption ability by inverse emulsion crosslinking. Mater. Lett. 137:59–61.10.1016/j.matlet.2014.08.126Suche in Google Scholar
Yang, H.L., Peng, Z.Q., Zhou, Y., Zhao, F., Zhang, J., Cao, X.Y., Hu, Z.W. (2011) Preparation and performances of a novel intelligent humidity control composite material. Energy Build. 43:386–392.10.1016/j.enbuild.2010.10.001Suche in Google Scholar
Yang, H.Z.B., Zheng, S.L. (2016) Wet diatomite/heavy calcium carbonate composite materials preparation and characterization of. Int. J. Inorg. Mater. 01:81–87.10.15541/jim20150287Suche in Google Scholar
Yu, M., Zhang, X.J., Zhao, Y., Zhang, X.B. (2019) A novel passive method for regulating both air temperature and relative humidity of the microenvironment in museum display cases. Energies 12(19):3768–3785.10.3390/en12193768Suche in Google Scholar
Zhu, P.H., Ou, H.J., Kuang, Y.D., Hao, L.J., Diao, J.J., Chen, G. (2020) Cellulose Nanofiber/Carbon Nanotube Dual Network-Enabled Humidity Sensor with High Sensitivity and Durability. ACS Appl. Mater. Interfaces 12(29):33229–33238.10.1021/acsami.0c07995Suche in Google Scholar PubMed
© 2022 Walter de Gruyter GmbH, Berlin/Boston
Artikel in diesem Heft
- Frontmatter
- Chemical pulping
- Evaluation of fines separation from unbleached softwood kraft pulp using microperforated hole screens
- Evaluation of pulp and paper making properties of Caesalpinia decapetela
- Novel bulking technologies for cellulose fibres
- Mechanical pulping
- Interpretation of force profiles in mill-scale LC refining
- Effects of plate wear on bar forces and fiber properties in a mill scale LC-refiner
- Paper technology
- Research on the physical properties of calcium sulfate whisker and the effects of its addition on paper and its printing performance
- Preparation and properties of an intelligent adjustable functional paper for organic cultural relics
- Paper chemistry
- Application of DSA to improve strength of thermomechanical pulp blended paper
- Coating
- The influence of pigment modulus on failure resistance of paper barrier coatings
- Effect of filler additions on pilot-scale extrusion coating of paperboard with PLA-based blends
- Packaging
- Influence of paper properties on adhesive strength of starch gluing
- Environmental impact
- Interfering elements on determination of hexavalent chromium in paper materials with UV-vis spectrophotometry
- Nanotechnology
- Enhanced mechanical and gas barrier performance of plasticized cellulose nanofibril films
- Lignin
- The preparations of nanoporous carbon with multi-heteroatoms co-doping from black liquor powders for supercapacitors
- Miscellaneous
- Hybrid films from plant and bacterial nanocellulose: mechanical and barrier properties
- Mass-balance based soft sensor for monitoring ash content at two-ply paperboard manufacturing
- Investigation of the effect of light fastness on the color changes of maps prepared by electrophotographic digital printing
- Bulking of cellulose fibres – a review
- Preparation of O-HACC/HEC-acrylate emulsion and its application in paper protection
- Mineral-filled biopolyester coatings for paperboard packaging materials: barrier, sealability, convertability and biodegradability properties
Artikel in diesem Heft
- Frontmatter
- Chemical pulping
- Evaluation of fines separation from unbleached softwood kraft pulp using microperforated hole screens
- Evaluation of pulp and paper making properties of Caesalpinia decapetela
- Novel bulking technologies for cellulose fibres
- Mechanical pulping
- Interpretation of force profiles in mill-scale LC refining
- Effects of plate wear on bar forces and fiber properties in a mill scale LC-refiner
- Paper technology
- Research on the physical properties of calcium sulfate whisker and the effects of its addition on paper and its printing performance
- Preparation and properties of an intelligent adjustable functional paper for organic cultural relics
- Paper chemistry
- Application of DSA to improve strength of thermomechanical pulp blended paper
- Coating
- The influence of pigment modulus on failure resistance of paper barrier coatings
- Effect of filler additions on pilot-scale extrusion coating of paperboard with PLA-based blends
- Packaging
- Influence of paper properties on adhesive strength of starch gluing
- Environmental impact
- Interfering elements on determination of hexavalent chromium in paper materials with UV-vis spectrophotometry
- Nanotechnology
- Enhanced mechanical and gas barrier performance of plasticized cellulose nanofibril films
- Lignin
- The preparations of nanoporous carbon with multi-heteroatoms co-doping from black liquor powders for supercapacitors
- Miscellaneous
- Hybrid films from plant and bacterial nanocellulose: mechanical and barrier properties
- Mass-balance based soft sensor for monitoring ash content at two-ply paperboard manufacturing
- Investigation of the effect of light fastness on the color changes of maps prepared by electrophotographic digital printing
- Bulking of cellulose fibres – a review
- Preparation of O-HACC/HEC-acrylate emulsion and its application in paper protection
- Mineral-filled biopolyester coatings for paperboard packaging materials: barrier, sealability, convertability and biodegradability properties