Issue
Korean Journal of Chemical Engineering,
Vol.39, No.4, 954-962, 2022
Melamine sponge-based copper-organic framework (Cu-CPP) as a multi-functional filter for air purifiers
COVID-19 has drawn great attention on the necessity for establishing pathogen-free indoor air. This paper offers an insight into the potential application of a multi-purpose filter to remove fine particulates and disinfect pathogens using melamine sponge with a copper-organic framework. In-situ growth dip coating method was applied to coat Cu-based coordination polymer particle (Cu-CPP) on melamine sponge (MS). The integration of Cu-CPPs with high crystallinity and highly active surface area (1,318.1m2/g) enabled Cu-CPP/MS to have an excellent capture rate (99.66%) and an instant disinfection rate of 99.54% for Escherichia coli. Electrostatic attraction seemed to play a crucial role in capturing negative-charged pathogens effectively by positive charges on Cu-CPP arising from unbalanced copper ions in Cu-CPP. Disinfection of pathogens was mainly attributed to catalytically active Cu2+ sites. Organic ligand played an important role in bridging and maintaining Cu2+ ions within the framework. This study highlights the design of a new capture-and-disinfection (CDS) air filter system for pathogens using Cu-CPP/MS. It can be applied as a substitute for conventional high-efficiency particulate air (HEPA) filters.
[References]
  1. Zhou P, Yang XL, Wang XG, Hu B, Zhang L, Zhang W, Si HR, Zhu Y, Li B, Huang CL, Chen HD, Chen J, Luo Y, Nature, 579, 270, 2020
  2. Wu F, Zhao S, Yu B, Chen YM, Wang W, Song ZG, Hu Y, Tao ZW, Tian JH, Pei YY, Yuan ML, Zhang YL, Dai FH, Nature, 579, 265, 2020
  3. Klaiber P, Wen JH, DeLongis A, Sin NL, J. Gerontol B Psychol. Sci. Soc. Sci., 76, e30, 2021
  4. Gaffney JS, Marley NA, ACS Symposium Series, 919, 286, 2005
  5. Asadi S, Wexler AS, Cappa CD, Barreda S, Bouvier NM, Ristenpart WD, Sci. Rep., 9, 2348, 2019
  6. Liu Y, Ning Z, Chen Y, Guo M, Liu Y, Gali NK, Sun L, Duan Y, Cai J, Westerdahl D, Liu X, Xu K, Ho KF, Kan H, Fu Q, Nature, 582, 557, 2020
  7. Stadnytskyi V, Bax CE, Bax A, Anfinrud P, Proc. Natl. Acad. Sci., 117, 11875, 2020
  8. Wang B, Zhang A, Sun JL, Liu H, Hu J, Xu LX, J. Biomech. Eng. -Trans. ASME, 127, 32, 2005
  9. Mui KW, Wong LT, Wu CL, Lai ACK, J. Hazard. Mater., 167, 736, 2009
  10. de Abajo FJG, Hernández RJ, Kaminer I, Meyerhans A, Rosell-Llompart J, Sanchez-Elsner T, ACS Nano, 14, 7704, 2020
  11. Passweg JR, Rowlings PA, Atkinson KA, Barrett AJ, Gale RP, Gratwohl A, Jacobsen N, Klein JP, Ljungman P, Bone Marrow Transplant., 21, 1231, 1998
  12. Oren I, Haddad N, Finkelstein R, Rowe JM, Am. J. Hematol., 66, 257, 2001
  13. Tellier R, Emerging Infect. Dis., 12, 1657, 2006
  14. Wargocki P, ASHRAE J., 57, 70, 2015
  15. Maus R, Goppelsröder A, Umhauer H, Atmos. Environ., 35, 105, 2001
  16. Price DL, Simmons RB, Crow SA Jr, Ahearn DG, J. Ind. Microbiol. Biotechnol., 32, 319, 2005
  17. Gilbert Y, Duchaine C, Can. J. Civ. Eng., 36, 1873, 2009
  18. Menzies D, Hdb Env Chem, 4, 151, 2005
  19. Bull K, Travel Med. Infect. Dis., 6, 142, 2008
  20. Perrier JCB, Coq LL, Andrès Y, Cloirec PL, Int. J. Chem. React. Eng., 6, 1, 2008
  21. Morawska L, Tang JW, Bahnfleth W, Bluyssen PM, Boerstra A, Buonanno G, Cao J, Dancer S, Floto A, Franchimon F, Environ. Int., 142, 105832, 2020
  22. Mousavi ES, Kananizadeh N, Martinello RA, Sherman JD, Environ. Sci. Technol. Lett., 55, 4134, 2020
  23. Umemura A, Diring S, Furukawa S, Uehara H, Tsuruoka T, Kitagawa S, J. Am. Chem. Soc., 133, 15506, 2011
  24. Shen M, Forghani F, Kong X, Liu D, Ye X, Chen S, Ding T, Compr. Rev. Food Sci. Food Saf., 19, 1397, 2020
  25. Xiao J, Chen S, Yi J, Zhang HF, Ameer GA, Adv. Funct. Mater., 27, 1604872, 2017
  26. Ruparelia JP, Chatterjee AK, Duttagupta SP, Mukherji S, Acta Biomater., 4, 707, 2008
  27. Wu C, Zhou Y, Fan W, Han P, Chang J, Yuen J, Zhang M, Xiao Y, Biomaterials, 33, 2076, 2012
  28. Li P, Li J, Feng X, Li J, Hao Y, Zhang J, Wang H, Yin A, Zhou J, Ma X, Wang B, Nat. Commun., 10, 2177, 2019
  29. Gritsch L, Lovell C, Goldmann WH, Boccaccini AR, Carbohydr. Polym., 179, 370, 2018
  30. Chui SSY, Lo SMF, Charmant JPH, Orpen AG, Williams ID, Science, 283, 1148, 1999
  31. Abbasi AR, Akhbari K, Morsali A, Ultrason. Sonochem., 19, 846, 2012
  32. Singbumrung K, Motina K, Pisitsak P, Chitichotpanya P, Wongkasemjit S, Inprasit T, Fibers Polym., 19, 1373, 2018
  33. Emam HE, Darwesh OM, Abdelhameed RM, Colloids Surf. B: Biointerfaces, 165, 219, 2018
  34. Rubin HN, Neufeld BH, Reynolds MM, ACS Appl. Mater. Interfaces, 10, 15189, 2018
  35. Ramya G, Camus O, Chew YMJ, Crittenden B, Perera S, ACS Appl. Polym. Mater., 2, 1569, 2020
  36. Yu L, Peel GK, Cheema FH, Lawrence WS, Bukreyeva N, Jinks CW, Peel JE, Peterson JW, Paessler S, Hourani M, Ren Z, Mater. Today Phys., 15, 100249, 2020
  37. Chen Y, Zhang S, Cao S, Li S, Chen F, Yuan S, Xu C, Zhou J, Feng X, Ma X, Wang B, Adv. Mater., 29, 1606221, 2017
  38. Feng Y, Yao J, Ind. Eng. Chem. Res., 57, 7322, 2018
  39. Gamez P, de Hoog P, Lutz M, Spek AL, Reedijk J, Inorg. Chim. Acta., 351, 319, 2003
  40. Wiles AB, Bozzuto D, Cahill CL, Pike RD, Polyhedron, 25, 776, 2006
  41. Zhao Y, Watanabe K, Hashimoto K, J. Am. Chem. Soc., 134, 19528, 2012
  42. Zhao Y, Watanabe K, Hashimoto K, J. Mater. Chem. A, 1, 1450, 2013
  43. Shanmugakala R, Tharmaraj P, Sheela CD, J. Mol. Struct., 1076, 606, 2014
  44. Shanmugakala R, Tharmaraj P, Sheela CD, Chidambaranathan N, Med. Chem. Res., 23, 329, 2014
  45. Ding Y, Xu W, Yu Y, Hou H, Zhu Z, ACS Appl. Mater. Interfaces, 10, 6652, 2018
  46. Deng CH, Gong JL, Zhang P, Zeng GM, Song B, Liu HY, J. Colloid Interface Sci., 488, 26, 2017
  47. Pinto J, Magrì D, Valentini P, Palazon F, Heredia-Guerrero JA, Lauciello S, Barroso-Solares S, Ceseracciu L, Pompa PP, ACS Appl. Mater. Interfaces, 10, 16095, 2018
  48. Hwang GB, Lee JE, Nho CW, Lee BU, Lee SJ, Jung JH, Bae GN, Sci. Total Environ., 421-422, 273, 2012
  49. Choi DY, Heo KJ, Kang J, An EJ, Jung SH, Lee BU, Lee HM, Jung JH, J. Hazard. Mater., 351, 29, 2018
  50. Park DH, Joe YH, Piri A, An S, Hwang J, J. Hazard. Mater., 396, 122640, 2020
  51. Ma S, Zhang M, Nie J, Yang B, Song S, Lu P, Cellulose, 25, 5999, 2018
  52. Rodríguez HS, Hinestroza JP, Ochoa-Puentes C, Sierra CA, Soto CY, J. Appl. Polym. Sci., 131, 40815, 2014
  53. Lis MJ, Caruzi BB, Gil GA, Samulewski RB, Bail A, P.Scacchetti FA, Moisés MP, Bezerra FM, Polymer, 11, 713, 2019
  54. Lu G, Li S, Guo Z, Farha OK, Hauser BG, Qi X, Wang Y, Wang X, Han S, Liu X, DuChene JS, Zhang H, Zhang Q, Nat. Chem., 4, 310, 2012
  55. Kuo CH, Tang Y, Chou LY, Sneed BT, Brodsky CN, Zhao Z, Tsung CK, J. Am. Chem. Soc., 134, 14345, 2012
  56. Nasrullah A, Khan AS, Bhat AH, Din IU, Inayat A, Muhammad N, Bakhsh EM, Khan SB, Renew. Energy, 168, 723, 2021
  57. Chen H, Wang L, Yang J, Yang RT, J. Phys. Chem. C, 117, 7565, 2013
  58. Gao H, Sun P, Zhang Y, Zeng X, Wang D, Zhang Y, Wang W, Wu J, Surf. Coat. Technol., 339, 147, 2018
  59. Zhou H, Zhang T, Yue X, Peng Y, Qiu F, Yang D, Ind. Eng. Chem. Res., 58, 4844, 2019
  60. Loera-Serna S, Oliver-Tolentino MA, de Lourdes López- Núñez M, Santana-Cruz A, Guzmán-Vargas A, Cabrera-Sierra R, J. Alloy. Compd., 540, 113, 2012
  61. Riccò R, Linder-Patton O, Sumida K, Styles MJ, Liang K, Amenitsch H, Doonan CJ, Falcaro P, Chem. Mater., 30, 5630, 2018
  62. Ma K, Wang Y, Chen Z, Islamoglu T, Lai C, Wang X, Fei B, Farha OK, Xin JH, ACS Appl. Mater. Interfaces, 11, 22714, 2019
  63. Zhang Y, Yuan S, Feng X, Li H, Zhou J, Wang B, J. Am. Chem. Soc., 138, 5785, 2016
  64. Li TT, Cen X, Ren HT, Wu L, Peng HK, Wang W, Gao B, Lou CW, Lin JH, ACS Appl. Mater. Interfaces, 12, 8730, 2020
  65. Li Z, Ma J, Ruan J, Zhuang X, Nanoscale Res. Lett., 14, 195, 2019
  66. Rauf A, Ye J, Zhang S, Qi Y, Wang G, Che Y, Ning G, Dalton Trans., 48, 17810, 2019
  67. Kumar R, Münstedt H, Biomaterials, 26, 2081, 2005
  68. Li B, Li Y, Zhao Y, Sun L, J. Phys. Chem. Solids, 74, 1842, 2013
  69. Shen M, Forghani F, Kong X, Liu D, Ye X, Chen S, Ding T, Compr. Rev. Food Sci. Food Saf., 19, 1397, 2020