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- videos/MarkBohrExplains14nm/Explanation of Intels 14nm Process.mp4 +3 -0
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videos/MarkBohrExplains14nm/Explanation of Intels 14nm Process.mp4
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videos/MarkBohrExplains14nm/captions.vtt
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WEBVTT
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00:00:02.990 --> 00:00:06.080
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so that about wraps it up all that's
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00:00:06.080 --> 00:00:07.940
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left is to just reverse the polarity on
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00:00:07.940 --> 00:00:10.040
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the shrink ray to bring me back to my
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00:00:10.040 --> 00:00:17.029
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normal side oh boy that's going to be a
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00:00:17.029 --> 00:00:19.420
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long walk home
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00:00:22.410 --> 00:00:29.880
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oh hi there until fellow mark boor here
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00:00:29.880 --> 00:00:32.279
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still following the same England ever
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00:00:32.279 --> 00:00:35.400
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inning path of Moore's law when I last
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00:00:35.400 --> 00:00:37.739
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saw you I was introducing Intel's 22
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00:00:37.739 --> 00:00:40.530
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nanometer transistor process but just
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00:00:40.530 --> 00:00:42.570
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like my walk technology never stops
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00:00:42.570 --> 00:00:45.780
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moving ahead now until has improved on
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00:00:45.780 --> 00:00:48.360
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this design and created a brand new 40
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00:00:48.360 --> 00:00:51.269
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nanometers process since I'm already the
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00:00:51.269 --> 00:00:53.220
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perfect size let's take a look at what's
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00:00:53.220 --> 00:00:59.550
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changed here's a familiar sight Intel's
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00:00:59.550 --> 00:01:03.030
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32 nanometer planar transistor as you'll
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00:01:03.030 --> 00:01:05.520
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remember the 22 nanometer process made
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00:01:05.520 --> 00:01:07.740
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the jump into the third dimension with
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00:01:07.740 --> 00:01:10.350
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its tri-gate transistor design offering
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00:01:10.350 --> 00:01:13.170
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better performance power and density in
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00:01:13.170 --> 00:01:16.020
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a last video we showed a single fin to
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00:01:16.020 --> 00:01:18.090
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illustrate this concept for simplicity
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00:01:18.090 --> 00:01:20.640
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but in reality most 22 nanometer
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00:01:20.640 --> 00:01:22.920
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transistors produced today feature not
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00:01:22.920 --> 00:01:25.440
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just one but multiple tri-gate fins
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often three or four to meet the
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00:01:27.690 --> 00:01:29.819
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challenges of the 40 nanometers process
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00:01:29.819 --> 00:01:32.490
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the tri-gate fins were once again the
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00:01:32.490 --> 00:01:35.250
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main areas of focus we made them taller
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00:01:35.250 --> 00:01:39.119
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thinner and spaced closer together this
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00:01:39.119 --> 00:01:41.099
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improved technology provides three major
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00:01:41.099 --> 00:01:43.860
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benefits first of all it is faster
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00:01:43.860 --> 00:01:45.720
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allowing more processing and ultimately
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00:01:45.720 --> 00:01:48.420
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better performance secondly the new
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design requires less active power
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contributing to longer battery life and
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also helping to reduce our carbon
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footprint third the new 40 nanometers
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tri gate fins are so effective that we
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can get by with fewer of them acquiring
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00:02:01.319 --> 00:02:05.009
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even less area per transistor and taken
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00:02:05.009 --> 00:02:07.349
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together the improvements of this new 14
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00:02:07.349 --> 00:02:09.780
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nanometer design result in an improved
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00:02:09.780 --> 00:02:11.489
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user experience that when Rich's the
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many parts of our lives touched by
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technology
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you know it's hard to keep up with the
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pace of innovation here at Intel and
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00:02:18.380 --> 00:02:19.730
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it's even harder when you're
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microscopically small but for now my
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00:02:22.250 --> 00:02:25.130
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walk continues you know I wonder if
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there's a nano bus stop around here
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00:02:26.990 --> 00:02:29.560
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somewhere
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videos/MarkBohrExplains14nm/sub-videos/Explanation of Intels 14nm Process_split0.mp4
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