2019
DOI: 10.1021/acsami.9b14265
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Robust, Lightweight, Hydrophobic, and Fire-Retarded Polyimide/MXene Aerogels for Effective Oil/Water Separation

Abstract: Polyimide (PI) aerogels have attracted great attention owing to their low density and excellent thermal stability. However, hydrophobic surface modification is required for PI aerogels to improve their ability in oil/water separation due to their amphiphilic characteristic. Two-dimensional MXenes (transition metal carbides/nitrides) can be utilized as nanofillers to enhance the properties of polymers because of their unique layered structure and versatile interface chemistry. Herein, the robust, lightweight, a… Show more

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Cited by 274 publications
(106 citation statements)
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“…was higher than that of PVA/CNC (241 ± 51 MPa), PVA/Ti 3 C 2 T x (283 ± 60 MPa) , and PVA nanofibers (221 ± 51 MPa) [ 112 ]. Likewise, polyimide/Ti 3 C 2 T x aerogel prepared via the freeze-drying of and annealing to form a robust, lightweight, and hydrophobic aerogel ( Figure 10 a) with three-dimensional “house of cards” structure ( Figure 10 b) [ 113 ]. The compressive strength at 80% strain and Young’s modulus of elasticity for PI/Ti 3 C 2 T x aerogel increased significantly with decreasing the Ti 3 C 2 T x concentration.…”
Section: Mechanical Of Self-standing Mxenes Vs Hybrid Mxenesmentioning
confidence: 99%
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“…was higher than that of PVA/CNC (241 ± 51 MPa), PVA/Ti 3 C 2 T x (283 ± 60 MPa) , and PVA nanofibers (221 ± 51 MPa) [ 112 ]. Likewise, polyimide/Ti 3 C 2 T x aerogel prepared via the freeze-drying of and annealing to form a robust, lightweight, and hydrophobic aerogel ( Figure 10 a) with three-dimensional “house of cards” structure ( Figure 10 b) [ 113 ]. The compressive strength at 80% strain and Young’s modulus of elasticity for PI/Ti 3 C 2 T x aerogel increased significantly with decreasing the Ti 3 C 2 T x concentration.…”
Section: Mechanical Of Self-standing Mxenes Vs Hybrid Mxenesmentioning
confidence: 99%
“…The compressive strength at 80% strain and Young’s modulus of elasticity for PI/Ti 3 C 2 T x aerogel increased significantly with decreasing the Ti 3 C 2 T x concentration. This is owing to greater porosity and lower density of PI/MXene aerogels with the increase of the Ti 3 C 2 T x amount [ 113 ]. Interestingly, the elastic properties, PI/MXene-3 with a ratio of 5.2:1, respectively, showed impressive stress−strain repeatability after 50 cycles of compression-release ( Figure 10 c), attributed to the strong interactions between PI chains and Ti 3 C 2 T x nanosheets in the hybrid aerogel [ 113 ].…”
Section: Mechanical Of Self-standing Mxenes Vs Hybrid Mxenesmentioning
confidence: 99%
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“…Aerogels are lightweight porous solid materials characterized by their extremely low density, high porosity, and high specific surface area. [ 1,2 ] In general, aerogels can be prepared by chemical vapor deposition (CVD), [ 3 ] hydrothermal methods, [ 4 ] and 3D printing, [ 5 ] while they can be prepared form silica, [ 6 ] carbon nanotubes, [ 7 ] graphene, [ 8,9 ] polyimide, [ 10,11 ] Kevlar, [ 12,13 ] and natural materials [ 14–16 ] to name a few. Due to the unique structure and properties of aerogels, they can be utilized for energy storage and conversion, [ 17–19 ] sensors, [ 20,21 ] catalyst support, [ 22,23 ] environmental remediation, [ 24,25 ] and many other diverse applications.…”
Section: Introductionmentioning
confidence: 99%
“…The "separation/purification" share of the pie as seen in (b) also includes applications such as capacitive deionization, [48,49] adsorptive or reactive detoxification of water contaminants, [50,51] and oil/ water separation by aerogels. [52] ) synthesis) of Ti 3 AlC 2 , Ti 3 C 2 T x has served as the basis of MXene research to date. [12,32,[57][58][59][60] The most commonly used etchant for MXene synthesis is aqueous hydrofluoric acid (HF).…”
Section: Preparation Of Mxene Nanosheetsmentioning
confidence: 99%