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PreviewIssue DateTitleAuthor(s)
20193D bioprinted nanocellulose-based hydrogels for tissue engineering applications: a brief reviewAthukoralalage, S.S.; Balu, R.; Dutta, N.K.; Choudhury, N.R.
20213D bioprinting of a cell-laden antibacterial polysaccharide hydrogel compositeRastin, H.; Ramezanpour, M.; Hassan, K.; Mazinani, A.; Tung, T.T.; Vreugde, S.; Losic, D.
20203D bioprinting of cell-laden electroconductive MXene nanocomposite bioinksRastin, H.; Zhang, B.; Mazinani, A.; Hassan, K.; Bi, J.; Tung, T.T.; Losic, D.
20203D bioprinting of methylcellulose/gelatin-methacryloyl (MC/GelMA) bioink with high shape integrityRastin, H.; Ormsby, R.T.; Atkins, G.J.; Losic, D.
20153D hierarchical assembly of ultrathin MnO₂ nanoflakes on silicon nanowires for high performance micro-supercapacitors in Li- doped ionic liquidDubal, D.; Aradilla, D.; Bidan, G.; Gentile, P.; Schubert, T.; Wimberg, J.; Sadki, S.; Gomez-Romero, P.
20193D Hollow α-MnO₂ framework as an efficient electrocatalyst for lithium–oxygen batteriesBi, R.; Liu, G.; Zeng, C.; Wang, X.; Zhang, L.; Qiao, S.Z.
20213D printable electrically conductive hydrogel scaffolds for biomedical applications: a reviewAthukorala, S.S.; Tran, T.S.; Balu, R.; Truong, V.K.; Chapman, J.; Dutta, N.K.; Roy Choudhury, N.
20213D printable soy/silk hybrid hydrogels for tissue engineering applicationsDorishetty, P.; Balu, R.; Gelmi, A.; Mata, J.P.; Dutta, N.K.; Choudhury, N.R.
20223D printing interface-modified PDMS/MXene nanocomposites for stretchable conductorsAakyiir, M.; Tanner, B.; Yap, P.L.; Rastin, H.; Tung, T.T.; Losic, D.; Meng, Q.; Ma, J.
20203D printing of cell-laden electroconductive bioink for tissue engineering applicationTung, T.T.; Rastin, H.; Zhang, B.; Bi, J.; Hassan, K.; Losic, D.
20173D synergistically active carbon nanofibers for improved oxygen evolutionZhu, Y.; Jing, Y.; Vasileff, A.; Heine, T.; Qiao, S.
20153D WS₂ nanolayers@heteroatom-doped graphene films as hydrogen evolution catalyst electrodesDuan, J.; Chen, S.; Chambers, B.; Andersson, G.; Qiao, S.
20223D-Printed Wearable Electrochemical Energy DevicesZhang, S.; Liu, Y.; Hao, J.; Wallace, G.G.; Beirne, S.; Chen, J.
2015[5]RadialeneMackay, E.; Newton, C.; Toombs-Ruane, H.; Lindeboom, E.; Fallon, T.; Willis, A.; Paddon-Row, M.; Sherburn, M.
2005A "new" desalination process: Forward osmosisWittholz, M.; Bradshaw, P.; Colby, C.; O'Neill, B.; van der Wel, B.; Hardin, M.; Australasian Chemical Engineering Conference (33rd : 2005 : Brisbane, Qld.)
2016A 2.0 V capacitive device derived from shape-preserved metal nitride nanorodsZhu, C.; Sun, Y.; Chao, D.; Wang, X.; Yang, P.; Zhang, X.; Huang, H.; Zhang, H.; Fan, H.J.
2019A 2D metal-organic framework/Ni(OH)₂ heterostructure for an enhanced oxygen evolution reactionZhu, D.; Liu, J.; Wang, L.; Du, Y.; Zheng, Y.; Davey, K.; Qiao, S.
2017A 3D hybrid of chemically coupled nickel sulfide and hollow carbon spheres for high performance lithium–sulfur batteriesYe, C.; Zhang, L.; Guo, C.; Li, D.; Vasileff, A.; Wang, H.; Qiao, S.
2018A 3D multifunctional architecture for lithium–sulfur batteries with high areal capacityZhao, S.; Fang, R.; Sun, Z.; Wang, S.; Veder, J.; Saunders, M.; Cheng, H.; Liu, C.; Jiang, S.P.; Li, F.
2020A bio-based ionic complex with different oxidation states of phosphorus for reducing flammability and smoke release of epoxy resinsFang, F.; Huo, S.; Shen, H.; Ran, S.; Wang, H.; Song, P.; Fang, Z.