Partical Resolution: Difference between revisions
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| published = 2012 | | published = 2012 | ||
| journal = [[Proceedings of the NPA]] | | journal = [[Proceedings of the NPA]] | ||
| volume = | | volume = 9 | ||
| num_pages = 7 | | num_pages = 7 | ||
| pages = 253-259 | | pages = 253-259 | ||
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==Abstract== | ==Abstract== | ||
Current probability theories limit the theoretical size of elementary particles. The current resolution of an electron microscope is around 10<sup>-9</sup> m. The classical equations in this paper allow for deterministic resolution with a theoretical resolution of around 10<sup>-15</sup> m, a millionfold more accurate.[[Category:Scientific Paper]] | Current probability theories limit the theoretical size of elementary particles. The current resolution of an electron microscope is around 10<sup>-9</sup> m. The classical equations in this paper allow for deterministic resolution with a theoretical resolution of around 10<sup>-15</sup> m, a millionfold more accurate. | ||
[[Category:Scientific Paper|partical resolution]] | |||
Latest revision as of 09:24, 21 July 2026
| Scientific Paper | |
|---|---|
| Title | Partical Resolution |
| Read in full | Link to paper |
| Author(s) | Philipp M Kanarev |
| Published | 2012 |
| Journal | Proceedings of the NPA |
| Volume | 9 |
| No. of pages | 7 |
| Pages | 253-259 |
Read the full paper here
Abstract
Current probability theories limit the theoretical size of elementary particles. The current resolution of an electron microscope is around 10-9 m. The classical equations in this paper allow for deterministic resolution with a theoretical resolution of around 10-15 m, a millionfold more accurate.