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Beilstein J. Nanotechnol. 2019, 10, 1103–1111, doi:10.3762/bjnano.10.110
Figure 1: Representative SEM images of samples grown at (a) 490 °C, (b) 530 °C, and (c) 580 °C, showing a lar...
Figure 2: (a) High-resolution HAADF image of a nanodot on top of the amorphous SiO2 layer, taken along the [1...
Figure 3: Chemical analysis of the sample grown at 530 °C. (a) Low-resolution cross-section STEM HAADF image ...
Figure 4: (a) PL spectra measured at 7 K and with an excitation power of 104 mW of a Si substrate and the bar...
Figure 5: Simulated transition energy as a function of the size of CIS nanodots according to Equation 1. The illustrate...
Beilstein J. Nanotechnol. 2018, 9, 1272–1281, doi:10.3762/bjnano.9.119
Figure 1: (a) Perturbation signal with a square pulse shape, exemplarily shown for a period of 6.67 μs, a pul...
Figure 2: Frequency spectra for square pulse perturbation signal (Vpulse = 0.5 V, wpulse = ½ period) with the...
Figure 3: (a) Frequency spectrum for bias modulation with exponential rise and fall shape, as illustrated in Figure 1f...
Figure 4: Experimental frequency spectra with a square shaped bias pulse (Vpulse = 0.2 V) of 50% duty cycle. ...
Figure 5: Experimental frequency spectra with a square shaped pulse of 50% duty cycle measured by FM-KPFM (fac...
Beilstein J. Nanotechnol. 2012, 3, 277–284, doi:10.3762/bjnano.3.31
Figure 1: XPS measurements on Cu3BiS3 and Cu3BiS3 etched in NH3. (a) Overview spectrum showing that Na, oxide...
Figure 2: KPFM measurements of the (from left to right) NH3-etched Cu3BiS3, and Cu3BiS3 with the In2S3, ZnS a...
Figure 3: Overview of the measured work-function values and their distribution for all samples investigated. ...
Figure 4: In-phase (solid circles) and 90°-phase-shifted (open circles) SPV spectra of (a) Cu3BiS3 and (b) Cu3...
Figure 5: PV amplitude spectra of (a) Cu3BiS3 and (b) Cu3BiS3/In2S3 at modulation frequencies between 3.5 and...