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    <subfield code="a">The  enrichment  of  DNA&#x2019;s  chemistry  endows  DNA  with  a  high  level  of  interest  in  bioelectronics  applications.  This research investigates  the charge storage capability and  mechanism for the synthesis of GO/DNA bio-composite aiming to develop a new type of  supercapacitors  based  on  biomaterial.  To  this  end,  a  sequential  success  of  material  synthesis  confirmed,  starting  with  successful  isolation  of  DNA  from  saccharomyces  cerevisiae  from  broth  culture  extended to  successful oxidation of graphite flakes  using  the  modified  Hummer&#x2019;s  method  to  further  develop  a  one-step  reduction  and functionalisation  of  graphene  oxide  (GO)  with  different  DNA  forms.  The  composites  physiochemical properties investigated with spectroscopic techniques including UV-Vis, Fourier transform infrared (FTIR),  X-ray diffraction (XRD),  Raman  shift,  and  fluorescent  spectroscopies  (FL).  In  addition,  surface  morphology  after  the  reduction  observed  by  employing FESEM.  Cyclic voltammetry  (CV), galvanostatic charge-discharge  (GCD),  and  electrochemical  impedance  spectroscopy  (EIS)  techniques  employed  in  threeelectrode configurations to study the electrochemical characteristics of the pure GO and  the fabricated composites  including rGO/ssDNA and GO/dsDNA electrodes in 1 M KOH.  rGO/ssDNA working  electrode.  All  of  the mentioned techniques verify the reduction of  GO in the presence of ssDNA as well as the functionalization of  both forms of  DNA  including double-stranded DNA (dsDNA) and single-stranded DNA (ssDNA)  on GO. The  easily  oxidized  guanine  nucleic  acid  acts  as  a  proton  pump  that  reduces  oxygen  functionalities.  All  electrochemical  investigations  confirmed  the  electric  double-layer  capacitance  (EDLC)  effect  for  pure  GO  and  synthesized  composites.  It  is  worth  mentioning  that  the  rGO/ssDNA composite elucidated  the highest EDLC effect compared  to  GO  and  GO/dsDNA  composite.  Specific  capacitance  for  rGO/ssDNA  electrode  is  found  to  elucidates  approximately  20-folds  higher  capacitance  compared  to  other  electrodes with  226 F  g-1at a current density  of  0.4 A  g-1in 1 M KOH. Furthermore,  rGO/ssDNA showed  an advancement electrochemical long-term stability of about 92.8%  after 10000 cycles in the aqueous basic electrolyte is also reported. The work comes with  a  successful  use  of DNA as a  reducing  agent  and conductive  biomolecule in  graphene  composite supercapacitor applications .</subfield>
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