197
Views
5
CrossRef citations to date
0
Altmetric
Articles

Exploring the promising potential of fallen bamboo leaves (Bambusa bambos) for efficient removal of crystal violet from wastewater

, , , , & ORCID Icon

References

  • Akpomie KG, Conradie J. 2021. Biosorption and regeneration potentials of magnetite nanoparticle loaded Solanum tuberosum peel for celestine blue dye. Int J Phytoremediation. 23(4):347–361. doi:10.1080/15226514.2020.1814198.
  • Aldawsari AM, Alsohaimi IH, Al-Kahtani AA, Alqadami AA, Ali Abdalla ZE, Saleh EAM. 2021. Adsorptive performance of aminoterephthalic acid modified oxidized activated carbon for malachite green dye: mechanism, kinetic and thermodynamic studies. Sep Sci Technol. 56(5):835–846. doi:10.1080/01496395.2020.1737121.
  • Avşar Teymur Y, Güzel F. 2020. Using of magnetized and non-magnetized tomato industrial processing solid waste in remediation of Reactive Blue 19 dye aqueous solution. Int J Phytoremediation. 22(13):1420–1430. 10.1080/15226514.2020.1781053.
  • Banerjee S, Sharma GC, Gautam RK, Chattopadhyaya MC, Upadhyay SN, Sharma YC. 2016. Removal of Malachite Green, a hazardous dye from aqueous solutions using Avena sativa (oat) hull as a potential adsorbent. J Mol Liq. 213:162–172. doi:10.1016/j.molliq.2015.11.011.
  • Bulgariu L, Escudero LB, Bello OS, Iqbal M, Nisar J, Adegoke KA, Alakhras F, Kornaros M, Anastopoulos I. 2019. The utilization of leaf-based adsorbents for dyes removal: a review. Mol Liq. 276:728–747. doi:10.1016/j.molliq.2018.12.001.
  • Chikri R, Elhadiri N, Benchanaa M, el maguana Y. 2020. Efficiency of sawdust as low-cost adsorbent for dyes removal. J Chem. 2020:1–17. doi:10.1155/2020/8813420.
  • Dada AO, Adekola FA, Odebunmi EO, Dada FE, Bello OM, Akinyemi BA, Bello OS, Umukoro OG. 2020. Sustainable and low-cost Ocimumgratissimum for biosorption of indigo carmine dye: kinetics, isotherm, and thermodynamic studies. Int J Phytoremediation. 22(14):1524–1537. doi:10.1080/15226514.2020.1785389.
  • Dey S, Bhagat P, Mohanta J, Dey B. 2022. Methylene blue removal using Eucalyptus leaves: a low cost protocol towards environmental sustainability. EJCHEM. 3(1):1–11. doi:10.24018/ejchem.2022.3.1.82.
  • Dey S, Chakraborty R, Mohanta J, Dey B. 2022. Tricosanthescucumerina: a potential biomass for efficient removal of methylene blue from water. Bioremediat J. 13:1–15. doi:10.1080/10889868.2022.2086530.
  • Essekri A, Hsini A, Naciri Y, Laabd M, Ajmal Z, el Ouardi M, Ait Addi A, Albourine A. 2021. Novel citric acid-functionalized brown algae with a high removal efficiency of crystal violet dye from colored wastewaters: insights into equilibrium, adsorption mechanism, and reusability. Int J Phytoremediation. 23(4):336–346. 10.1080/15226514.2020.1813686.
  • Jawad AH, Abdulhameed AS, Wilson LD, Syed-Hassan SSA, ALOthman ZA, Khan MR. 2021. High surface area and mesoporous activated carbon from KOH-activated dragon fruit peels for methylene blue dye adsorption: optimization and mechanism study. Chin J Chem Eng. 32:281–290. doi:10.1016/j.cjche.2020.09.070.
  • Jawad AH, Bardhan M, Islam MA, Islam MA, Syed-Hassan SSA, Surip SN, ALOthman ZA, Khan MR. 2020. Insights into the modeling, characterization and adsorption performance of mesoporous activated carbon from corn cob residue via microwave- assisted H3PO4 activation. Surf Interfaces. 21:100688. doi:10.1016/j.surfin.2020.100688.
  • Jawad AH, Hum NNMF, Farhan AM, Mastuli MS. 2020. Biosorption of methylene blue dye by rice (Oryza sativa L.) straw: adsorption and mechanism study. DWT. 190:322–330. doi:10.5004/dwt.2020.25644.
  • Jawad AH, Kadhum AM, Ngoh YS. 2018. Applicability of dragon fruit (Hylocereuspolyrhizus) peels as low-cost biosorbent for adsorption of methylene blue from aqueous solution: kinetics, equilibrium and thermodynamics studies. DWT. 109:231–240. doi:10.5004/dwt.2018.21976.
  • Jawad AH, Ngoh YS, Radzun KA. 2018. Utilization of watermelon (Citrulluslanatus) rinds as a natural low-cost biosorbent for adsorption of methylene blue: kinetic, equilibrium and thermodynamic studies. J Taibah Univ Sci. 12(4):371–381. doi:10.1080/16583655.2018.1476206.
  • Jawad AH, Rashid RA, Mahmuod RMA, Ishak MAM, Kasim NN, Ismail K. 2016. Adsorption of methylene blue onto coconut (Cocos nucifera) leaf: optimization, isotherm and kinetic studies. Desalination Water Treat. 57(19):8839–8853. doi:10.1080/19443994.2015.1026282.
  • Jawad AH, Waheeb AS, Rashid RA, Nawawi WI, Yousif E. 2020. Equilibrium isotherms, kinetics, and thermodynamics studies of methyleneblue adsorption on pomegranate (Punicagranatum) peels as a naturallow-cost biosorbent). DWT. 190:322–330. doi:10.5004/dwt.2018.22021.
  • Keereerak A, Chinpa W. 2020. A potential biosorbent from Moringa oleifera pod husk for crystal violet adsorption: kinetics, isotherms, thermodynamic and desorption studies. Sci Asia. 46(2):186–194. doi:10.2306/scienceasia1513-1874.2020.034.
  • Krika F, Krika A, Azizi A. 2019. Chemical review and letters Arundo donax L. as a low-cost and promising biosorbent for the removal of crystal violet from aqueous media: kinetic, isotherm and thermodynamic investigations. Chem Rev Lett. 2:59–68.
  • Kumari R, Dey S. 2019a. Synthesis of porous iron – zirconium mixed oxide fabricated ethylene diamine composite for removal of cationic dye. DWT. 158:319–329. doi:10.5004/dwt.2019.24223.
  • Kumari R, Dey S. 2019b. A breakthrough column study for removal of malachite green using coco-peat. Int J Phytoremediation. 21(12):1263–1271. 10.1080/15226514.2019.1633252.
  • Kumari R, Dey S. 2018. Facile removal of Congo red using Mahua (Madhucalongifolia) seeds, a low cost adsorbent facile removal of Congo red using Mahua seeds (Madhucalongifolia) seeds, a low cost adsorbent. Int J Green Herb Chem. 7(2):237–250. doi:10.24214/IJGHC/GC/7/2/23750.
  • Kumari R, Mohanta J, Dey B, Dey S. 2020. Eucalyptus leaf powder as an efficient scavenger for Congo red from water: comprehensive batch and column investigation. Sep Sci Technol. 55(17):3047–3059. doi:10.1080/01496395.2019.1670208.
  • Lim LBL, Priyantha N, Tennakoon DTB, Chieng HI, Dahri MK, Suklueng M. 2017. Breadnut peel as a highly effective low-cost biosorbent for methylene blue: equilibrium, thermodynamic and kinetic studies. Arab J Chem. 10:S3216–S3228. doi:10.1016/j.arabjc.2013.12.018.
  • Mahmoud ME, Nabil GM, Khalifa MA, El-Mallah NM, Hassouba HM. 2019. Effective removal of crystal violet and methylene blue dyes from water by surface functionalized zirconium silicate nanocomposite. J Environ Chem Eng. 7(2):103009. doi:10.1016/j.jece.2019.103009.
  • Mehmandost N, Goudarzi N, Arab Chamjangali M, Bagherian G. 2022. Application of random forest for modeling batch and continuous fixed-bed removal of crystal violet from aqueous solutions using Gypsophila aretioides stem-based biosorbent. Spectrochim Acta A Mol Biomol Spectrosc. 265:120292. 10.1016/j.saa.2021.120292.
  • Miyah Y, Lahrichi A, Idrissi M, Khalil A, Zerrouq F. 2018. Adsorption of methylene blue dye from aqueous solutions onto walnut shells powder: equilibrium and kinetic studies. Surf Interfaces. 11:74–81. doi:10.1016/j.surfin.2018.03.006.
  • Mohanta J, Kumari R, Qaiyum MA, Dey B, Dey S. 2021. Alkali assisted hydrophobic reinforcement of coconut fiber for enhanced removal of cationic dyes: equilibrium, kinetics, and thermodynamic insight. Int J Phytoremediation. 23(13):1423–1431. 10.1080/15226514.2021.1901850.
  • Munagapati VS, Wen HY, Vijaya Y, Wen JC, Wen JH, Tian Z, Reddy GM, Raul Garcia J. 2021. Removal of anionic (Acid Yellow 17 and Amaranth) dyes using aminated avocado (Perseaamericana) seed powder: adsorption/desorption, kinetics, isotherms, thermodynamics, and recycling studies. Int J Phytoremediation. 23(9):911–923. 10.1080/15226514.2020.1866491.
  • Nieva AD, Avena LGS, Pascual MAM, Pamintuan KRS. 2020. Characterization of powdered pineapple (Ananascomosus) crown leaves as adsorbent for crystal violet in aqueous solutions. In: IOP Conference Series: Earth and Environmental Science Transactions of the Royal Society of Edinburgh. Vol. 563. Bristol: IOP Publishing Ltd. doi:10.1088/1755-1315/563/1/012010.
  • OmidiKhaniabadi Y, Mohammadi MJ, Shegerd M, Sadeghi S, Basiri H, Basiri H. 2016. Removal of Congo red dye from aqueous solutions by a low-cost adsorbent: activated carbon prepared from Aloe vera leaves shell. Environ Health Eng Manag. 4(1):29–35. doi:10.15171/EHEM.2017.05.
  • Qaiyum MA, Mohanta J, Kumari R, Samal PP, Dey B, Dey S. 2022. Alkali treated water chestnut (Trapanatans L.) shells as a promising phytosorbent for malachite green removal from water. Int J Phytoremediation. 24(8):822–830. 10.1080/15226514.2021.1977912.
  • Rashid RA, Jawad AH, Azlan M, Ishak M, Kasim NN. 2018. FeCl3-activated carbon developed from coconut leaves: characterization and application for methylene blue removal. JSM. 47(3):603–610. doi:http://dx.doi.org/10.17576/jsm-2018-4703-22.
  • Rehman R, Majeed S. 2022. Biosorptive removal of crystal violet dye from aqueous solutions by Ficusreligiosa leaves and Daucus carota pomace in ecofriendly way. Int J Phytoremediation. 24(10):1004–1013. 10.1080/15226514.2021.1991269.
  • Sarabadan M, Bashiri H, Mousavi SM. 2019. Adsorption of crystal violet dye by zeolite-montmorillonite: modeling, kinetic and equilibrium studies. Clay Miner. 54(4):357–368. doi:10.1180/clm.2019.48.
  • Singh H, Chauhan G, Jain AK, Sharma SK. 2017. Adsorptive potential of agricultural wastes for removal of dyes from aqueous solutions. J Environ Chem Eng. 5(1):122–135. doi:10.1016/j.jece.2016.11.030.
  • Srivatsav P, Bhargav BS, Shanmugasundaram V, Arun J, Gopinath KP, Bhatnagar A. 2020. Biochar as an eco-friendly and economical adsorbent for the removal of colorants (Dyes) from aqueous environment. Rev Water. 12(12):3561. doi:10.3390/w12123561.
  • Tan IAW, Hameed BH. 2012. Removal of crystal violet dye from aqueous solutions using rubber (heveabrasillensis) seed shell-based biosorbent. Desalination Water Treat. 48(1–3):174–181. doi:10.1080/19443994.2012.698810.
  • Vanni G, Escudero LB, Dotto GL. 2017. Powdered grape seeds (PGS) as an alternative biosorbent to remove pharmaceutical dyes from aqueous solutions. Water Sci Technol. 76(5–6):1177–1187. 10.2166/wst.2017.307.
  • Vigneshwaran S, Sirajudheen P, Karthikeyan P, Meenakshi S. 2021. Fabrication of sulfur-doped biochar derived from tapioca peel waste with superior adsorption performance for the removal of Malachite green and Rhodamine B dyes. Surf Interfaces. 23:100920. doi:10.1016/j.surfin.2020.100920.
  • Vyavahare G, Jadhav P, Jadhav J, Patil R, Aware C, Patil D, Gophane A, Yang YH, Gurav R. 2019. Strategies for crystal violet dye sorption on biochar derived from mango leaves and evaluation of residual dye toxicity. J Cleaner Prod. 207:296–305. doi:10.1016/j.jclepro.2018.09.193.
  • Zehra T, Priyantha N, Lim LBL. 2016. Removal of crystal violet dye from aqueous solution using yeast-treated peat as adsorbent: thermodynamics, kinetics, and equilibrium studies. Environ Earth Sci. 75(4):1–15. doi:10.1007/s12665-016-5255-8.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.