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Received March 11, 2022
Accepted July 26, 2022
- This is an Open-Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/bync/3.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
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Polyethylenimine-crosslinked calcium silicate hydrate derived from oyster shell waste for removal of Reactive Yellow 2
1Department of Ocean System Engineering, Gyeongsang National University, 2 Tongyeonghaean-ro, Tongyeong, Gyeongnam 53064, Korea 2Department of Marine Environmental Engineering, Gyeongsang National University, 2 Tongyeonghaean-ro, Tongyeong, Gyeongnam 53064, Korea
sungukw@gnu.ac.kr
Korean Journal of Chemical Engineering, January 2023, 40(1), 136-144(9), 10.1007/s11814-022-1243-8
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Abstract
Large amounts of oyster shells are often dumped in natural water and landfills, causing pollution and health/ sanitation issues. It is highly desirable to convert oyster shell wastes into high-value-added products. In this study, an oyster shell waste-based adsorbent, polyethylenimine-crosslinked synthesized calcium silicate hydrate (PEI/S-CSH), was developed through a two-step processing route consisting of CSH synthesis and PEI crosslinking. The prepared adsorbent was characterized using FT-IR, XRD, BET, FE-SEM, and Zeta potential analyzer, and the results showed that the PEI/S-CSH was successfully prepared. In addition, the adsorption performance of PEI/S-CSH was investigated for a reactive dye, Reactive Yellow 2 (RY2), and adsorption experiments were conducted for variables such as pH value, initial concentration, and time. The PEI/S-CSH removed more than 90% of the initial RY2 concentration in the pH range of 2-7, and was almost unaffected in the NaCl concentration range of 0.01-0.1M. The maximum RY2 uptake of PEI/SCSH by the Langmuir model was estimated to be 235.0 and 156.0mg/g at pH 2 and 7, respectively. The adsorption equilibrium was affected by the pH change and equilibrium was reached within 10min at pH 2 and 30min at pH 7. The reusability of PEI/S-CSH was investigated through repeated adsorption/desorption evaluation for a total of five times. As a result, PEI/S-CSH showed good adsorption/desorption performance for RY2 up to five times. Therefore, PEI/S-CSH can be considered as an adsorbent with high potential for removing reactive dyes.
References
Bonnard M, Boury B, Parrot I, Environ. Sci. Technol., 54(1), 26 (2020)
Li Y, Huang P, Guo S, Nie M, J. Clean Prod., 272, 122694 (2020)
Liu R, Chen D, Cai X, Deng Z, Liao Y, J. Clean Prod., 266, 121729 (2020)
Hsu TC, J. Hazard. Mater., 171(1-3), 995 (2009)
Chiou I, Chen C, Li Y, Constr. Build. Mater., 64, 480 (2014)
Lee CH, Lee DK, Ali MA, Kim PJ, Waste Manage., 28(12), 2702 (2008)
Wu Q, Chen J, Clark M, Yu Y, Appl. Surf. Sci., 311, 264 (2014)
Ding D, Zhao Y, Yang S, Shi W, Zhang Z, Lei Z, Yang Y, Water Res., 47(7), 2563 (2013)
Xu X, Liu X, Oh M, Park J, Pol. J. Environ. Stud, 28(4), 2949 (2019)
Inthapanya X, Wu S, Han Z, Zeng G, Wu M, Yang C, Environ. Sci. Pollut. Res., 26(6), 5944 (2019)
He C, Qu J, Yu Z, Chen D, Su T, He L, Zhao Z, Zhou C, Hong P, Li Y, Nanomaterials, 9(7), 953 (2019)
Chen J, Cai Y, Clark M, Yu Y, PLoS One, 8(4), e60243 (2013)
You W, Hong M, Zhang H, Wu Q, Zhuang Z, Yu Y, Phys. Chem. Chem. Phys., 18(23), 15564 (2016)
Mariana M, Mistar E, Yahya EB, Alfatah T, Danish M, Amayreh M, J. Water Process Eng., 43, 102221 (2021)
Aryee AA, Mpatani FM, Kani AN, Dovi E, Han R, Li Z, Qu L, J. Clean Prod., 310, 127502 (2021)
Bao S, Yang W, Wang Y, Yu Y, Sun Y, Li K, Chem. Eng. J., 399, 125762 (2020)
Cho CW, Kang SB, Kim S, Yun YS, Won SW, Chem. Eng. J., 302, 545 (2016)
Tian X, Wang W, Wang Y, Komarneni S, Yang C, Microporous Mesoporous Mater., 207, 46 (2015)
Nayab S, Farrukh A, Oluz Z, Tuncel EI, Tariq SR, Rahman HU, Kirchhoff K, Duran H, Yameen B, ACS Appl. Mater. Interfaces, 6(6), 4408 (2014)
Wang Z, Kang SB, Won SW, J. Environ. Chem. Eng., 9(2), 105058 (2021)
Choi HA, Park HN, Won SW, J. Environ. Manage., 204, 200 (2017)
Kang SB, Wang Z, Won SW, Chem. Eng. Trans., 78, 205 (2020)
Kim KM, Wang Z, Kang SB, Won SW, Korean J. Chem. Eng., 36(9), 1455 (2019)
Nebel H, Neumann M, Mayer C, Epple M, Inorg. Chem., 47(17), 7874 (2008)
Wang J, He Y, Yang Y, Xie W, Ling X, Physicochem. Probl. Miner. Process., 53(1), 227 (2017)
Baltakys K, Jauberthie R, Siauciunas R, Kaminskas R, Mater. Sci.-Pol., 25(3), 663 (2007)
Won SW, Park J, Mao J, Yun YS, Bioresour. Technol., 102(4), 3888 (2011)
Sakpal T, Kumar A, Kamble S, Kumar R, Indian J. Chem. Technol., 51A, 1214 (2012)
Zhang D, Hegab HE, Lvov Y, Snow LD, Palmer J, Springer- Plus, 5(1), 1 (2016)
Render D, Samuel T, King H, Vig M, Jeelani S, Babu RJ, Rangari V, J. Nanomater., 2016, 3170248 (2016)
Zhang M, Chang J, Ultrason. Sonochem., 17(5), 789 (2010)
Sanna S, Schmidt WG, Thissen P, J. Phys. Chem. C, 118(15), 8007 (2014)
Halubek-Gluchowska K, Szymański D, Tran TNL, Ferrari M, Lukowiak A, Materials, 14(4), 937 (2021)
Bouatrous M, Bouzerara F, Bhakta AK, Delobel F, Delhalle J, Mekhalif Z, Ceram. Int., 46(8), 12618 (2020)
Sing KS, Williams RT, Adsorpt. Sci. Technol., 22(10), 773 (2004)
Guan W, Ji F, Chen Q, Yan P, Pei L, Materials, 6(7), 2846 (2013)
Wu SC, Hsu HC, Wu YN, Ho WF, Mater. Charact., 62(12), 1180 (2011)
Xing R, Qin Y, Guan X, Liu S, Yu H, Li P, Egypt. J. Aquat. Res., 39(2), 83 (2013)
Huerta-Fontela M, Galceran MT, Ventura F, Water Res., 45(3), 1432 (2011)
Kim MH, Hwang CH, Kang SB, Kim S, Park SW, Yun YS, Won SW, Chem. Eng. J., 280, 18 (2015)
Zhao X, Wang X, Lou T, J. Hazard. Mater., 403, 124054 (2021)
Kazemi SY, Biparva P, Ashtiani E, Ecol. Eng., 88, 82 (2016)
Shirzad-Siboni M, Khataee A, Joo SW, J. Ind. Eng. Chem., 20(2), 610 (2014)
Tsai WT, Hsien KJ, Hsu HC, Lin CM, Lin KY, Chiu CH, Bioresour. Technol., 99(6), 1623 (2008)
Iftekhar S, Ramasamy DL, Srivastava V, Asif MB, Sillanpaa M, Chemosphere, 204, 413 (2018)
Kang SB, Wang Z, Won SW, Korean J. Chem. Eng., 38(3), 523 (2021)
Li Y, Huang P, Guo S, Nie M, J. Clean Prod., 272, 122694 (2020)
Liu R, Chen D, Cai X, Deng Z, Liao Y, J. Clean Prod., 266, 121729 (2020)
Hsu TC, J. Hazard. Mater., 171(1-3), 995 (2009)
Chiou I, Chen C, Li Y, Constr. Build. Mater., 64, 480 (2014)
Lee CH, Lee DK, Ali MA, Kim PJ, Waste Manage., 28(12), 2702 (2008)
Wu Q, Chen J, Clark M, Yu Y, Appl. Surf. Sci., 311, 264 (2014)
Ding D, Zhao Y, Yang S, Shi W, Zhang Z, Lei Z, Yang Y, Water Res., 47(7), 2563 (2013)
Xu X, Liu X, Oh M, Park J, Pol. J. Environ. Stud, 28(4), 2949 (2019)
Inthapanya X, Wu S, Han Z, Zeng G, Wu M, Yang C, Environ. Sci. Pollut. Res., 26(6), 5944 (2019)
He C, Qu J, Yu Z, Chen D, Su T, He L, Zhao Z, Zhou C, Hong P, Li Y, Nanomaterials, 9(7), 953 (2019)
Chen J, Cai Y, Clark M, Yu Y, PLoS One, 8(4), e60243 (2013)
You W, Hong M, Zhang H, Wu Q, Zhuang Z, Yu Y, Phys. Chem. Chem. Phys., 18(23), 15564 (2016)
Mariana M, Mistar E, Yahya EB, Alfatah T, Danish M, Amayreh M, J. Water Process Eng., 43, 102221 (2021)
Aryee AA, Mpatani FM, Kani AN, Dovi E, Han R, Li Z, Qu L, J. Clean Prod., 310, 127502 (2021)
Bao S, Yang W, Wang Y, Yu Y, Sun Y, Li K, Chem. Eng. J., 399, 125762 (2020)
Cho CW, Kang SB, Kim S, Yun YS, Won SW, Chem. Eng. J., 302, 545 (2016)
Tian X, Wang W, Wang Y, Komarneni S, Yang C, Microporous Mesoporous Mater., 207, 46 (2015)
Nayab S, Farrukh A, Oluz Z, Tuncel EI, Tariq SR, Rahman HU, Kirchhoff K, Duran H, Yameen B, ACS Appl. Mater. Interfaces, 6(6), 4408 (2014)
Wang Z, Kang SB, Won SW, J. Environ. Chem. Eng., 9(2), 105058 (2021)
Choi HA, Park HN, Won SW, J. Environ. Manage., 204, 200 (2017)
Kang SB, Wang Z, Won SW, Chem. Eng. Trans., 78, 205 (2020)
Kim KM, Wang Z, Kang SB, Won SW, Korean J. Chem. Eng., 36(9), 1455 (2019)
Nebel H, Neumann M, Mayer C, Epple M, Inorg. Chem., 47(17), 7874 (2008)
Wang J, He Y, Yang Y, Xie W, Ling X, Physicochem. Probl. Miner. Process., 53(1), 227 (2017)
Baltakys K, Jauberthie R, Siauciunas R, Kaminskas R, Mater. Sci.-Pol., 25(3), 663 (2007)
Won SW, Park J, Mao J, Yun YS, Bioresour. Technol., 102(4), 3888 (2011)
Sakpal T, Kumar A, Kamble S, Kumar R, Indian J. Chem. Technol., 51A, 1214 (2012)
Zhang D, Hegab HE, Lvov Y, Snow LD, Palmer J, Springer- Plus, 5(1), 1 (2016)
Render D, Samuel T, King H, Vig M, Jeelani S, Babu RJ, Rangari V, J. Nanomater., 2016, 3170248 (2016)
Zhang M, Chang J, Ultrason. Sonochem., 17(5), 789 (2010)
Sanna S, Schmidt WG, Thissen P, J. Phys. Chem. C, 118(15), 8007 (2014)
Halubek-Gluchowska K, Szymański D, Tran TNL, Ferrari M, Lukowiak A, Materials, 14(4), 937 (2021)
Bouatrous M, Bouzerara F, Bhakta AK, Delobel F, Delhalle J, Mekhalif Z, Ceram. Int., 46(8), 12618 (2020)
Sing KS, Williams RT, Adsorpt. Sci. Technol., 22(10), 773 (2004)
Guan W, Ji F, Chen Q, Yan P, Pei L, Materials, 6(7), 2846 (2013)
Wu SC, Hsu HC, Wu YN, Ho WF, Mater. Charact., 62(12), 1180 (2011)
Xing R, Qin Y, Guan X, Liu S, Yu H, Li P, Egypt. J. Aquat. Res., 39(2), 83 (2013)
Huerta-Fontela M, Galceran MT, Ventura F, Water Res., 45(3), 1432 (2011)
Kim MH, Hwang CH, Kang SB, Kim S, Park SW, Yun YS, Won SW, Chem. Eng. J., 280, 18 (2015)
Zhao X, Wang X, Lou T, J. Hazard. Mater., 403, 124054 (2021)
Kazemi SY, Biparva P, Ashtiani E, Ecol. Eng., 88, 82 (2016)
Shirzad-Siboni M, Khataee A, Joo SW, J. Ind. Eng. Chem., 20(2), 610 (2014)
Tsai WT, Hsien KJ, Hsu HC, Lin CM, Lin KY, Chiu CH, Bioresour. Technol., 99(6), 1623 (2008)
Iftekhar S, Ramasamy DL, Srivastava V, Asif MB, Sillanpaa M, Chemosphere, 204, 413 (2018)
Kang SB, Wang Z, Won SW, Korean J. Chem. Eng., 38(3), 523 (2021)