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However, when an attempt was made to arrange a magnetic material layer on a recording medium by means of a sputtering method using a ferromagnetic metal material such as Co—Ni, etc., the magnetic properties of the magnetic recording medium were deteriorated due to the heat generated by the ferromagnetic metal material during the sputtering process. Furthermore, in the case of a magnetic recording medium, wherein the magnetic properties were improved by means of a long-period chromium (Cr) film, the sensitivity, C/N, characteristics, etc. of the magnetic recording medium were deteriorated, thereby making it difficult to apply the magnetic recording medium to a high-density magnetic recording medium.
In order to eliminate the above-mentioned problems, it has been proposed that the above-mentioned problems were eliminated by forming an amorphous magnetic film containing a non-magnetic metal element and a magnetic film containing a ferromagnetic metal atom by means of an electron beam deposition method as disclosed in Japanese Laid-Open Patent Application No. 49-73732. However, in this method, the manufacturing process became complicated and it became impossible to effectively utilize the vacuum chambers of an existing magnetic recording apparatus, thereby resulting in a very high cost of manufacturing magnetic recording media.
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Thus, the LSM images have revealed the crack behaviors of the Ti film on the PDMS substrates at the micro- and nanoscales. The LSM images are found to be consistent with the optical microscopy images, as shown in Figure 2g,h. From the results obtained so far, it is found that the crack formation mainly occurs during the deformation of the PDMS substrate, and that the crack behaviors are strain dependent. The crack density is larger in the undeformed areas and becomes smaller as the strain becomes larger. 827ec27edc