Multifunctional Nanocomposites with High Strength and Capacitance Using 2D MXene and 1D Nanocellulose.
basic_science · Level V
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- Record sourced from PubMed, PMID 31408235.
- Also identified by DOI 10.1002/adma.201902977.
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Abstract
The family of two-dimensional (2D) metal carbides and nitrides, known as MXenes, are among the most promising electrode materials for supercapacitors thanks to their high metal-like electrical conductivity and surface-functional-group-enabled pseudocapacitance. A major drawback of these materials is, however, the low mechanical strength, which prevents their applications in lightweight, flexible electronics. A strategy of assembling freestanding and mechanically robust MXene (Ti<sub>3</sub> C<sub>2</sub> T<sub>x</sub> ) nanocomposites with one-dimensional (1D) cellulose nanofibrils (CNFs) from their stable colloidal dispersions is reported. The high aspect ratio of CNF (width of ≈3.5 nm and length reaching tens of micrometers) and their special interactions with MXene enable nanocomposites with high mechanical strength without sacrificing electrochemical performance. CNF loading up to 20%, for example, shows a remarkably high mechanical strength of 341 MPa (an order of magnitude higher than pristine MXene films of 29 MPa) while still maintaining a high capacitance of 298 F g<sup>-1</sup> and a high conductivity of 295 S cm<sup>-1</sup> . It is also demonstrated that MXene/CNF hybrid dispersions can be used as inks to print flexible micro-supercapacitors with precise dimensions. This work paves the way for fabrication of robust multifunctional MXene nanocomposites for printed and lightweight structural devices.
Medical subject headings
- Cellulose
- Electric Capacitance
- Mechanical Phenomena
- Nanocomposites