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1. Porous carbons derived from carbonization of tissue papers for supercapacitors

2. Phytosynthesis of silver nanoparticles; naked eye cellulose filter paper dual mechanism sensor for mercury ions and ammonia in aqueous solution

9. Natural fibers and reduced graphene oxide-based flexible paper electrode for energy storage applications

10. Flexible reduced graphene oxide paper with excellent electromagnetic interference shielding for terahertz wave

11. Titanium oxynitride coated graphite paper electrodes for light-weight supercapacitors

16. Excellent electrical performance and thermal properties insulation paper based on polyimide porous fiber membrane modified by nano-SiO2

17. Electrodeposition of bimetallic NiPt nanosheet arrays on carbon papers for high performance nonenzymatic disposable glucose sensors

19. Comment on analysis of X-ray diffraction data in the paper 'Structural and size dependence magnetic properties of Mn-doped NiO nanoparticles prepared by wet chemical method' by C. Thangamani et al. [J. Mater. Sci: Mater. Electron. 31, 11101 (2020)]

20. Low-cost fabrication of a pH sensor based on writing directly over parchment-type paper with pencil

21. Highly conductive graphene paper for flexible electronics applications

22. Size-induced structural phase transition in nanocrystalline CaYTiNbO7:Eu: comments on the paper by Mahesh and Rao (J. Mater. Sci.: Mater. Electron. 31, 20,847 (2020))

23. Free-standing paper-like heat spreading films based on graphene oxide-aromatic molecule composites

24. Space charge and insulation properties of nano-Al2O3-modified oil-impregnated paper used for HVDC convertor transformer

25. Preparation of PI porous fiber membrane for recovering oil-paper insulation structure

26. Development of electrochemical paper-based analytical sensor from UHT milk packaging waste

27. Dielectric properties of Ag/paper-based metacomposite with sandwich-structure forward low dielectric loss in megahertz frequency range

28. Nickel hydroxide and lignocelluloses fibers based flexible paper electrodes for energy storage applications

29. Enhanced mechanical and electrical insulating properties of (poly(para-phenylene terephthamide)) PPTA-based specialty paper with nanoscale PPTA fibers

30. Paper templated synthesis of nanostructured Cu–ZnO and its enhanced photocatalytic activity under sunlight

32. Giant electrical energy storage density in the P(VDF-TrFE)–graphene oxide composite papers with quasi-two-dimensional ferroelectricity

33. Low content reduced graphene oxide as the reinforcement in cellulosic conductive paper via a hetero-reduction

34. Novel aramid paper-based materials with enhanced thermal conductivity via ZnO nanowire decoration on aramid fibers

35. A facile synthesis of self-assembling reduced graphene oxide/cobalt carbonate hydroxide papers for high-performance supercapacitor applications

36. CuCo2S4 nanotubes on carbon fiber papers for high-performance all-solid-state asymmetric supercapacitors

37. Electrodeposition of silver (Ag) nanoparticles on MnO2 nanorods for fabrication of highly conductive and flexible paper electrodes for energy storage application

38. Two dimensional MoS2/CNT hybrid ink for paper-based capacitive energy storage

39. One-step hydrothermal synthesis of Ni3S4@MoS2 nanosheet on carbon fiber paper as a binder-free anode for supercapacitor

40. A flexible electrode based on recycled paper pulp and reduced graphene oxide composite

41. Fabrication of user-defined copper conductive patterns onto paper substrate for flexible electronics by combining wax patterning with electroless plating

42. Preparation of selective conductive copper patterns by pen-on-paper writing combined with electroless plating

44. Nickel oxide grown on carbon nanotubes/carbon fiber paper by electrodeposition as flexible electrode for high-performance supercapacitors

45. Free-standing microporous paper-like graphene films with electrodeposited PPy coatings as electrodes for supercapacitors

46. Controlled growth of ZnO nanorods on common paper substrate and their application for flexible piezoelectric nanogenerators

48. Paper-based nanosilver conductive ink

49. Comment on the paper by T. K. Thirumalaisamy, R. Saravanan, S. Saravanakumar 'The redistribution of charge density in CaF2:Yb3+', J. Mater Sci: Mater Electron, v. 26, p. 6683 (2015)