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Beilstein J. Nanotechnol. 2017, 8, 592–603, doi:10.3762/bjnano.8.64
Figure 1: TEM images of electrochemically synthesized core–shell A) Au NPs and B) Pd NPs.
Figure 2: Schematic view of the two-pole chemiresistor based on a MWCNT network functionalized with metal NPs....
Figure 3: XPS core level spectrum of A) Au 4f and B) Pd 3d on functionalized MWCNTs.
Figure 4: SEM images of A) pristine MWCNTs, and metal-decorated MWCNTs with B) 0.3 at. %, C) 1.1 at. % Au NP ...
Figure 5: Mean sensitivity of pristine and A) Au- and B) Pd-modified MWCNTs-based sensors toward NO2 gas at d...
Figure 6: Time response of chemiresistors based on pristine and functionalized MWCNT films with A) Au loading...
Figure 7: Time response of chemiresistors based on pristine and functionalized MWCNTs films with A) Au loadin...
Figure 8: Variation of A) the response time (tResponse) and B) the recovery time (tRecovery) of pristine, Au-...
Figure 9: Comparison of mean sensitivity for four chemiresistors based on functionalized MWCTs with Au loadin...
Beilstein J. Nanotechnol. 2017, 8, 82–90, doi:10.3762/bjnano.8.9
Figure 1: A scheme of a Pd-modified rod-like ZnO-based chemiresistive gas sensor.
Figure 2: XPS spectra of the chemical elements in pristine ZnO: Zn 2p and O 1s spectra, deconvoluted in two c...
Figure 3: SEM images of A) pristine and B) Pd-modified ZnO nanostructures, after thermal annealing at 550 °C....
Figure 4: A) Time response and B) calibration curves of the change of electrical resistance of chemiresistors...
Figure 5: Time response of A) pristine ZnO and B) Pd-modified ZnO, detected at with as-prepared sensors (t0) ...
Figure 6: Mean sensitivity of pristine and Pd@ZnO towards CH4, C3H8, and C4H10 gases at an operating temperat...
Figure 7: Mean sensitivity of pristine and Pd@ZnO NRs towards NO2 and C4H10 at an operating temperature of 30...