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The Chitlang fault runs parallel to the 3-km-long gap zone between two other faults.
In the following, the MEF of the molecule located within the gap zone is particularly discussed.
This illustrates that the excitation rate is also sensitive to the molecular location in the gap zone.
After 24 h of mineralization, CaPO4 particles were found outside the fibril, associated with the overlap region, in close proximity to the gap zone.
In the excitation stage, the hybrid nanostructure performs as a nanolens to focus the incident plane wave into the gap zone to induce a hot spot.
Therefore, the hybrid nanostructure performs as a nanolens to focus an incident wave into the gap zone, which is a hotspot area [41].
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The characteristic 67 nm periodicity of gap zones was not observed on the mineralized fibril, but became apparent and increasingly pronounced with continuous demineralization.
It also determined that this arrangement continues through the gap region, despite the absence of one collagen molecule at this location and the fact that each of the four molecular segments adopts a unique conformation within the gap zones [50].
These nano-aggregates of ACP are thought to form flowable nano-precursors which can infiltrate the water filled gap zones in dentinal collagen fibrils, where they precipitate as polyelectrolyte-stabilized apatite nano-crystals [49].
This analog is usually a polyphosphate molecule, such as sodium metaphosphate, which acts as an apatite template, encouraging crystalline alignment in the gap zones [53], leading to a hierarchical dentin remineralization [50].
The 67 nm periodicity (corresponding to one D-period) stems from the staggered arrangement of collagen molecules in a given fibril, where the staggered spaces between the ends of successive collagen molecules yield the so-called gap zones and the areas where multiple molecules are superimposed represent the overlap zone (Fig. 1).
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