447 TB/cm² at zero retention energy – atomic-scale memory on fluorographane
1–10 of 169 posts
Re: 447 TB/cm² at zero retention energy – atomic-scale memory on fluorographane
#2Re: 447 TB/cm² at zero retention energy – atomic-scale memory on fluorographane
#3[1]: https://www.tampabay.com/archive/1991/06/23/holograms-the-ne...
Re: 447 TB/cm² at zero retention energy – atomic-scale memory on fluorographane
#4Re: 447 TB/cm² at zero retention energy – atomic-scale memory on fluorographane
#5Sniff test: a paper with a single author and 53 revisions, listing a gmail address as contact information despite the author, after a brief internet search, appearing to have affiliations with CSU Global, (maybe) the University of Central Florida, and the San Jose State University Department of Aerospace.
Re: 447 TB/cm² at zero retention energy – atomic-scale memory on fluorographane
#6Re: 447 TB/cm² at zero retention energy – atomic-scale memory on fluorographane
#7Re: 447 TB/cm² at zero retention energy – atomic-scale memory on fluorographane
#8Remarkable. If this material works and is flexible enough, we could someday see tape drives with hundreds of exabytes of capacity.
Re: 447 TB/cm² at zero retention energy – atomic-scale memory on fluorographane
#9Sniff test: a paper with a single author and 53 revisions, listing a gmail address as contact information despite the author, after a brief internet search, appearing to have affiliations with CSU Global, (maybe) the University of Central Florida, and the San Jose State University Department of Aerospace.
Author here. Three PhDs (Mathematics, Pisa; Quantum Chemistry, UCF; Materials Science, UTD — in progress), plus MS degrees from SJSU and CSU. The gmail is because this is independent work, not affiliated with any institution. v53 reflects thirteen years of development since the original 2013 publication (Graphene 1, 107–109). The barrier is verified at two independent levels of theory with a confirmed transition stat…
Re: 447 TB/cm² at zero retention energy – atomic-scale memory on fluorographane
#10Earlier quoted context omitted.
Author here. Three PhDs (Mathematics, Pisa; Quantum Chemistry, UCF; Materials Science, UTD — in progress), plus MS degrees from SJSU and CSU. The gmail is because this is independent work, not affiliated with any institution. v53 reflects thirteen years of development since the original 2013 publication (Graphene 1, 107–109). The barrier is verified at two independent levels of theory with a confirmed transition stat…
Have you considered subjecting this to expert scrutiny by submitting to a journal? That's probably better than getting hot takes on HN by random technology enthusiasts, skeptics, anon experts, and trolls.