Page 211 - AJWEP-22-4
P. 211

Bombax ceiba-based carbons for dye removal

                University, South Korea; and Suranaree University of    in Nepal. In:  Flora and Vegetation of Nepal. Cham:
                Technology (SUT), Thailand, for their valuable support   Springer International Publishing, 2024. p. 37-88.
                in carrying out this research.                          doi: 10.1007/978-3-031-50702-1_3
                                                                    8.  Saigl ZM. Various adsorbents for removal of rhodamine
                Funding                                                 b dye: A review. Indones J Chem. 2021;21(4):1039-1056.
                                                                        doi: 10.22146/ijc.62863

                None.                                               9.  Smith RT, Brown LM, Davis PK. Impact of synthetic dyes
                                                                        on aquatic ecosystems. Wat Resear. 2020;185:116250.
                                                                        doi: 10.56557/upjoz/2023/v44i133542
                Conflict of interest                                10.  Ding L, Zou B, Gao W, et al. Adsorption of Rhodamine-B
                                                                        from aqueous solution using treated  rice husk-based
                The author declares no conflict of interest.            activated  carbon.  Colloids  Surf  A Physicochem  Eng
                                                                        Asp. 2014;446:1-7.
                Author contributions                                    doi: 10.1016/j.colsurfa.2014.01.030
                                                                    11.  Li Z, Xu M, Xia Y, et al. High-frequency supercapacitors
                This is a single-authored article.                      surpassing dynamic limit  of electrical  double layer
                                                                        effects. Nat Commun. 2025;16:3704.
                Availability of data                                    doi: 10.1038/s41467-025-59015-7
                                                                    12.  Dutta  S,  Gupta  B,  Srivastava  S,  Gupta  A.  Recent
                The  data  supporting  the  findings  of  this  study  are   advances on the removal of dyes from wastewater using
                available from the corresponding author upon reasonable   various adsorbents:  A  critical  review.  Mater Advan.
                request.                                                2021;14(2):4497-4531.
                                                                        doi: 10.1039/D1MA00354B
                References                                          13.  Mondal S, Purkait MK, De S. Advances in Dye Removal
                                                                        Technologies. Singapore: Springer; 2018. p. 323.
                                                                        doi: 10.1007/978-981-10-6293-3
                1.  Shrestha D. Efficiency of wood-dust of Dalbergia sissoo   14.  Ruan W, Hu J, Qi J, Hou Y, Zhou C, Wei X. Removal of
                   as low-cost adsorbent  for rhodamine-B  dye removal.   dyes from wastewater by nanomaterials: A review. Adv
                   Nanomaterials (Basel). 2021a;11(9):2217.             Mater Lett. 2019;10(1):9-20.
                   doi: 10.3390/nano11092217                            doi: 10.5185/amlett.2019.2148
                2.  Shrestha  D.  Removal  of  eosin  Y  dye  using  activated   15.  Dassanayake RS, Acharya S, Abidi N. Recent advances in
                   carbons from modified wood dust powder of Dalbergia   biopolymer-based dye removal technologies. Molecules.
                   sissoo. Patan Pragya. 2021b;8(1):57-72.              2021;26(15):4697.
                   doi: 10.3126/pragya.v8i01.42356                      doi: 10.3390/molecules26154697
                3.  Katheresan V, Kansedo J, Lau SY. Efficiency of various   16.  Shindhal  T,  Rakholiya  P,  Varjani  S,  et al. A  critical
                   recent  wastewater  dye removal  methods:  A  review.   review on advances in the practices and perspectives for
                   J Enviorn Chem Engine. 2018;6(4):4676-4697.          the treatment of dye industry wastewater. Bioengineered.
                   doi: 10.1016/j.jece.2018.06.060                      2021;12(1):70-87.
                4.  Al-Gheethi AA, Azhar QM, Kumar PS, et al. Sustainable      doi: 10.1080/21655979.2020.1863034
                   approaches  for  removing  Rhodamine  B  dye  using   17.  Samsami S, Mohamadizaniani M, Sarrafzadeh MH,
                   agricultural  waste  adsorbents:  A  review.  Chemosphe.   Rene ER, Firoozbahr M. Recent advances in the treatment
                   2022;287:132080.                                     of dye-containing wastewater  from textile  industries:
                   doi: 10.1016/j.chemosphere.2021.132080               Overview and perspectives. Proc Safe Environ Protect.
                5.  Shrestha  S, Pradhananga  D, Pandey  V.  Kathmandu   2020;143:138-163.
                   Valley Groundwater Outlook. Kathmandu, Nepal: Asian      doi: 10.1016/j.psep.2020.05.034
                   Institute of Technology (AIT), The Small Earth Nepal   18.  Cai Z, Sun Y, Liu W, Pan F, Sun P, Fu JM. An overview of
                   (SEN),  Center  of  Research  for  Environment  Energy   nanomaterials applied for removing dyes from wastewater.
                   and  Water  (CREEW),  International  Research  Center   Environ Sci Pollut Res. 2017;24:15882-15904.
                   for River Basin Environment- University of Yamanashi      doi: 10.1007/s11356-017-9003-8
                   (ICRE-UY); 2012.                                 19.  Geçgel Ü, Üner O, Gökara G, Bayrak Y. Adsorption of
                6.  Yadav SN, Rai S, Behera M, et al. Dynamic assembly   cationic dyes on activated carbon obtained from waste
                   and  stabilization  of surfactant-dye-polyelectrolyte   Elaeagnus stone. Adsorpt Sci Technol. 2016;34:512-525.
                   complexes: An overview. J Mol Liq. 2025;421:126897.     doi: 10.1177/0263617416669727
                   doi: 10.1016/j.molliq.2025.126897                20.  Xiao W, Garba Z, Sun S, et al. Preparation and evaluation
                7.  Rokaya MB, Parajuli B, Timsina B. Vegetation and forest   of  an  effective  activated  carbon  from  white  sugar  for



                Volume 22 Issue 4 (2025)                       203                           doi: 10.36922/AJWEP025240191
   206   207   208   209   210   211   212   213   214   215   216