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Clearly, the magnetic field-responsive hemicellulose microgels possessed a magnetic response, which provides possibilities for use in biomedical applications.
Therefore, the presence of undesirable contributions to the magnetic response which may arise from such non-homogenous features are easily removed.
The hybrid NPs show good magnetic response, which can get together under an external applied magnetic field and hence they should become promising magnetic recovery catalysts (MRCs).
The higher concentration of iron oxide may be helpful for obtaining stronger magnetic response, which is meaningful for designing both fluorescence and magnetic field sensitive bi-functional fiber materials as discussed by Ma et al. [18].
The as-prepared ZnO@(Fe3O4/ZnS Mn2+) possess porous hollow structure with strong orange fluorescence and faster magnetic response, which is beneficial for the functions of drug loading, fluorescence labeling and magnetic targeting simultaneously.
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In addition, the Fe3O4 NPs present higher saturation magnetization (85.2 emu g-1) and excellent magnetic response behaviors, which have great potential applications in magnetic separation technology.
The resulting material combinations have novel magnetic properties, enhanced optical absorption, better luminescence effects and improved sensing response, which make them suitable for gas sensor device applications [7].
It is shown that the response of LTV approximations converges to the nonlinear system's response which is validated by using the non-affine nonlinear dynamical equations of rotor-active magnetic bearing system.
For negative trions (X − ) in QDs, anomalous magnetic responses are observed, which cannot be described by the conventional quadratic energy shift with the magnetic field.
For the case of X− in QDs, its magnetic response shows an anomalous behavior, which does not follow the conventional B2-dependence energy shift, as can be seen from Fig. 3b.
Our studies show that the SW model within the framework of the superparamagnetic criterion indeed explains the magnetic response of tips of various types, which give rise to distinctly different field-dependence of the spin-STS signal.
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