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Considering the etch rate of approximately 320 nm/min, etch depths of several hundreds of nanometers to more than a micron can be achieved with low relative spatial etch depth variation, since the absolute difference in spatial etch depth represents only a small fraction of the height of the Si nanostructures.
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A theoretical imaging resolution of a few hundred microns can be achieved.
As an example, we show that 3D nanofibrous constructs having cylindrical pores that internal diameter could be precisely tuned from tens to hundreds of microns can be obtained.
A clearance nozzle has been developed so that spray from a narrow exit in size of a few microns can be realized.
The design allows to change the spectral range of interest continuously, from the soft (around 1.5 keV) where we can achieve the highest lithographic resolution, to hard X-ray region (higher than 10 keV) where sensitive materials of thickness of tens of microns can be exposed.
For small animals, micro-CT (μCT), which has spatial resolution in the order of microns, can be utilized.
Our laboratory has shown that aerosolized chrysotile fibers longer than 16 microns can be deposited in the peripheral lung parenchyma of rats, and the measured clearance rate of these fibers is not significantly different from zero.
However, the layered structure and significant porosity in the micron order can be seen clearly when the paste age prolonged to 30 min and 45 min, which are characterized by a series of microscale voids/pores, as the pictures displayed in Fig. 7(b) and (c).
In recent interviews, three prominent doctors who have treated asbestos workers for lung cancer said tremolite fibers up to three microns wide can be inhaled and possibly cause lung cancer.
Further study is required to clarify if the PLAL synthesis of semiconducting nano- and micron-tubes can be extended to other noble metals.
The NWs have a high aspect ratio with varying diameter of approximately 30 to 60 nm and length extending several microns as can be noticed in Figure 4b.
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