$B:G=*99?7F|;~!'(B2015-07-10 15:24:01
machine learning (1$B7o(B) | ||||
---|---|---|---|---|
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B P-2 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
198 | $B%;%s%5!<%G!<%?$H5!3#3X=,$r3hMQ$7$?:G?7$N%$%s%U%i0[>o$NM=C{8!CN(B | P-2 | sensor data omen detection machine learning | 12/22 11:27:10 |
Magnetic nanoparticle (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
109 | $B<'@-%J%NN3;R$,6I=j=8@Q$7$?%3%l%9%F%j%C%/1U>=%^%$%/%m%+%W%;%k$N2sE>5sF0(B | 12-b | Cholesteric liquid crystalline Microcapsule Magnetic nanoparticle | 12/18 12:18:03 |
Magnetic particles (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
764 | $B?;F)05$NH/8=$H<'@-2s<}$rN>N)$9$k5!G=@-HyN3;R$N3+H/(B | 4-a | Draw solution Magnetic particles Forward osmosis | 12/26 17:11:11 |
maicrowave heating (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 2-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
902 | $B%^%$%/%mGH2CG.$r | 2-b | maicrowave heating sttiring finite-element analysis | 12/27 17:41:50 |
maintenance (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B P-2 (2$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
122 | $B=D7?9bB.2sE>5!3#(B($B%"%H%^%$%6(B)$B$N%a%s%F%J%s%9J}K!(B | P-2 | spray dryer spray dryer device maintenance | 12/18 14:02:59 |
196 | $B3F | P-2 | maintenance introduction of IT of check duties technology transfer | 12/22 11:25:08 |
major energy resources production (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B F-3 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
904 | [$B>7BT9V1i(B] $B | F-3 | major energy resources production major energy resources transportation Japanese measures to increase availability | 1/6 07:03:00 |
major energy resources transportation (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B F-3 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
904 | [$B>7BT9V1i(B] $B | F-3 | major energy resources production major energy resources transportation Japanese measures to increase availability | 1/6 07:03:00 |
mammalian cell (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B S-3 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
94 | [$B>7BT9V1i(B] $B?77?F0J*:YK&G]M\MQ%P%$%*%j%"%/%?!<$N6&F13+H/(B | S-3 | bio mammalian cell ventilated mixing culture | 12/18 10:35:00 |
mammalian cell culture (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-f (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
545 | $BF0J*G]M\:YK&$NBe | 7-f | metabolic flux analysis mammalian cell culture 13C tracer experiment | 12/26 01:04:33 |
mammalian cells (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
496 | $B8wJ,2r@-%J%N%7%'%k$K$h$k:YK&$N5!G=@)8f(B | 7-a | mammalian cells caging photo-degradable polymers | 12/25 17:40:10 |
Management (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 14-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
738 | $B3$301s3VCO$K$*$1$k%W%m%8%'%/%H?k9T$N2]Bj(B | 14-a | Project Management Risk | 12/26 16:41:03 |
Mangrove (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-f (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
846 | $B%?%$$K$*$1$k%^%s%0%m!<%V=$I|CO0h$NEZ>m2=3X@-5Z$SC:AG8GDjI>2A(B | 13-f | Carbon sequestration Mangrove Soil chemical properties | 12/26 19:53:17 |
Marine algae (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
461 | $BE42=3X | 13-e | Iron species Marine algae Growth rate | 12/25 16:20:07 |
marine microalgae (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
744 | 5$B | 5-g | marine microalgae growth biomass production | 12/26 16:48:11 |
market (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B F-1 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
822 | $BEIAuJ,Ln$K$*$1$k5;=Q2]Bj$H%J%N%U%k%$%I$X$N4|BT(B | F-1 | hard coating market | 12/26 18:42:24 |
mass transfer (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-f (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
392 | $B1U1UCj=P$K$*$1$k%^%$%/%mN.O)@_7WK!$N3+H/(B | 5-f | microchannel extraction mass transfer | 12/25 10:47:07 |
498 | $BG]M\4D6-FbJ* | 7-a | iPS cell mass transfer numerical simulation | 12/25 17:47:10 |
Mass transfer coefficient (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 2-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
183 | $B5$K"EcFb%^%$%/%m%P%V%k$N1UAjJ* | 2-d | Mass transfer coefficient Micro bubble Bubble interaction | 12/20 21:55:05 |
mass transfer model (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 6-c (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
561 | $BAj4VJ* | 6-c | phase transfer catalysis numerical simulation mass transfer model | 12/26 09:50:16 |
mass transfer resistance (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 1-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
217 | Analysis of mass transfer resistance in liquid phase on supercritical carbon dioxide drying | 1-a | supercritical drying mass transfer resistance dimensionless number | 12/22 15:31:36 |
material (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
680 | $BGS?e=hM}$KMQ$$$kN.F0@-C4BN$N:` | 4-b | carrier material wastewater treatment | 12/26 15:18:31 |
material flow analysis (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B K-1 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
160 | [$B>7BT9V1i(B] Development of biomass residue recycle system of plantation based on the analyses of material flow and soil ecosystem | K-1 | Plantation, sustainable cultivation system biomass residue recycle, soil ecosystem material flow analysis | 12/19 11:39:44 |
materials deterioration diagnosis technique (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B P-2 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
193 | $B2=3XAuCV$NJ]0B$H%a%s%F%J%s%9$K$D$$$F(B | P-2 | facilities maintenance standard operator's maintenance materials deterioration diagnosis technique | 12/22 10:49:19 |
Materials for intensified reaction (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B K-2 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
19 | [$B>7BT9V1i(B] The rational design of materials for intensified reaction and separation in energy-related processes | K-2 | Materials for intensified reaction Separation | 12/2 11:17:03 |
Materials management (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 6-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
246 | $BIJ | 6-e | Excipients Degradation Materials management | 12/23 13:31:25 |
Maxblend (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
479 | Effect of large impeller on fermentation of Aspergillus oryzae | 7-a | Maxblend mixing fermentation | 12/25 16:54:08 |
Maximum Entropy Production Principle (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B F-1 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
700 | $BG.BPN.%Q%?!<%s$NAjE>0\8=>]$K$*$1$k%(%s%H%m%T!<@8@.B.EY:GBg86M}$NE,MQK!(B | F-1 | Maximum Entropy Production Principle Thermal Marangoni Convection Pattern Formation | 12/26 15:45:35 |
MCM-41 (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
40 | MCM-41$B$N%$%=%V%?%s$N;@2=C&?eAGH?1~$KBP$9$k?(G^3h@-$N2~A1(B | 5-a | Oxidative dehydrogenation isobutane MCM-41 | 12/10 12:45:11 |
mechanochemical (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B F-1 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
706 | $B%a%+%N%1%_%+%kI=LL=hM}%?%k%/$rMQ$$$?9b6/EY | F-1 | Surface modification high strength resin mechanochemical | 12/26 15:53:57 |
megakaryocyte (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
179 | Enhancement of megakaryocytic differentiation in vitro for generating functional platelet-like fragments | 7-d | megakaryocyte cell differentiation in vitro culture | 12/19 22:36:36 |
melilite (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-k (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
199 | Eu2+$B$rIj3h$7$?%a%j%i%$%H7?N22=J*$N9g@.$H$=$N7V8wFC@-(B | 12-k | Phosphor sulfide melilite | 12/22 11:35:30 |
melt crystallization (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
110 | $BM;1U>=@O$N(B1$Bo4J0W2r@O(B-$B7k>=@.D9B.EY$H7k>==cEY$N?d;;(B- | 12-g | melt crystallization crystal purity growth rate | 12/18 13:29:11 |
Membrane (9$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (8$B7o(B), 13-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
271 | Pore-plugging$BK!$K$h$j@=Kl$7$?(BMFI$B7?%<%*%i%$%HKl$NF)2aJ,N%@-G=(B | 4-a | zeolite membrane gas separation | 12/24 11:19:19 |
304 | $B%<%*%i%$%H$r=PH/86NA$H$7$FMQ$$$?9b%7%j%+(BCHA$BKl$N9g@.$HJ,N%FC@-(B | 4-a | zeolite membrane chabazite | 12/24 14:32:06 |
480 | $B@5?;F)Kl$rMQ$$$? | 13-b | Forward osmosis Wastewater treatment Membrane | 12/25 16:56:21 |
571 | $B | 4-a | RHO membrane synthesis | 12/26 10:20:16 |
763 | V$B9g6bKl$K$h$kCbAG!&?eAG:.9g%,%9$+$i$N?eAGJ,N%(B | 4-a | vanadium energy carrier membrane | 12/26 17:10:51 |
778 | $B:Y9&Fb= | 4-a | membrane hydrogen permeation | 12/26 17:25:38 |
799 | $BBQ05@-$H9bB.(BCO2$BA*BrF)2a@-$rJ;$;;}$D%"%_%N;@%$%*%s1UBN%2%kKl$NAO@=(B | 4-a | Amino acid ionic liquid Gel membrane | 12/26 18:03:57 |
839 | $B?e%A%c%s%M%k$NJ,;RM"Aw5!9=$rLO5<$7$?9b8zN(?eF)2aKl$NM}O@@_7W(B | 4-a | membrane aquaporin water chanel | 12/26 19:34:17 |
873 | $B;Y;}BN>e$N ($BAaBg@h?JM}9)(B/$BAaBgM}9)Am8&(B/JST-CREST) ($B@5(B)$B>>J}(B $B@5I'!&(B | 4-a | FAU-type zeolite Membrane dehydration | 12/26 22:06:47 |
Membrane bioreactor (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
49 | $B?tM}%b%G%k$r3hMQ$7$?(BMBR$B$K$*$1$k1?E>>r7o$N:GE,2=$N8!F$(B | 4-a | Membrane bioreactor Operating condition Optimization | 12/13 08:09:21 |
membrane distillation (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
410 | $BAB?e@-%;%i%_%C%/Kl$rMQ$$$???6uKl>xN1K!$K$h$k%9%/%m!<%9?eMO1UG;=L(B | 4-a | membrane distillation hydrophobic membrane sucrose concentration | 12/25 12:59:55 |
Membrane electrode assemble (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
783 | $BA48GBN%"%k%+%jG3NAEECS$NH/EE@-G=$N8~>e$K8~$1$?Kl(B-$BEE6K@\9gBN$N9=B$@)8f(B | 9-e | Solid-state alkaline fuel cell Membrane electrode assemble Cell performance | 12/26 17:38:46 |
membrane filtration (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
697 | $B7y5$3h@-1xE%$NM-5!;@;:@8$HKl_I2aFC@-$K5Z$\$9GQ?e=hM}>r7o$N1F6A(B | 4-b | membrane filtration anaerobic activated sludge organic acid | 12/26 15:36:40 |
membrane fouling (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
501 | $BJ,;RF0NO3XK!$K$h$k?eJ,;R$N5sF02r@O$H%]%j%^! | 4-a | hydration membrane fouling molecular dynamics | 12/25 17:59:22 |
Membrane Property (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
808 | $B%j%s;i | 12-a | Membranome Surface Enhanced Raman Scattering Membrane Property | 12/26 18:14:51 |
Membrane protein (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
804 | $B$,$s4XO"Kl%?%s%Q%/ | 7-a | Membrane protein Antibody Fluorescent probe | 12/26 18:07:30 |
membrane reactor (3$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (3$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
588 | $B?eAGF)2a%7%j%+J#9gKl$K$h$kKlH?1~4o3+H/(B | 4-a | cuonter diffusion CVD method silica hybrid membranes membrane reactor | 12/26 11:07:33 |
656 | Bimodal catalytic membrane reactors for hydrogen production in the dehydrogenation of methylcyclohexane | 4-a | Membrane reactor Organosilica membrane Methylcyclohexane dehydrogenation | 12/26 14:17:45 |
695 | $B?eAGA*BrF)2a%7%j%+Kl$N9g@.5Z$S$=$NKlH?1~4o$H$7$F$N1~MQ(B | 4-a | silica membrane CVD membrane reactor | 12/26 15:33:02 |
membrane separation (4$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (4$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
51 | $BF)@OKl$N%U%!%&%j%s%0@)8f$K8~$1$??eOB?e$N%_%/%m5sF02r@O(B | 4-a | membrane separation molecular dynamics free energy | 12/15 10:02:22 |
116 | $B%S%K%k%H%j%a%H%-%7%7%i%s$rA06nBN$H$7$?AB?e@-%7%j%+Kl$ND4@=$H?];@%(%A%k$NJ,N%FC@-(B | 4-a | Membrane separation Pervaporation Hydrophobicity | 12/18 13:46:06 |
395 | Pd/Ag$BKl$N?eAGFs;@2=C:AG:.9g5$$+$i$N?eAGF)2a$K4X$9$k8&5f(B | 4-a | Membrane Separation Hydrogen Carbon Dioxide | 12/25 11:02:56 |
629 | AlPO4-18 $BKl$N(BCO2 / CH4 $BF)2aJ,N%5sF0$N8!F$(B | 4-a | membrane separation AlPO4-18 CO2 / CH4 | 12/26 12:59:44 |
Membranome (8$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-a (5$B7o(B), 4-f (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
787 | $B%j%]%=!<%`Kl>l$K$*$1$k(BL-Proline$B$NJ,N%!&H?1~$NI>2A$H@)8f(B | 12-a | Membranome Michael Addition Reaction L-Proline | 12/26 17:44:30 |
788 | $B%j%]%=!<%`Kl$r>l$H$7$??eCf$G$N%"%_%N;@=L9g=E9gH?1~$NI>2A(B | 12-a | Membranome Amino Acid Polymerization Liposome | 12/26 17:49:34 |
791 | $BJQ@-$r@8$8$J$$KlFb:_@-%?%s%Q%/ | 4-i | Intrinsic Membrane Proteins Electrophoretic Separation Membranome | 12/26 17:51:24 |
796 | $B;i | 12-a | Membranome Micro-Membrane Properties Molecular Conversion | 12/26 17:55:59 |
798 | Cardiolipin$B=$>~%j%]%=!<%`Kl$r>l$H$9$k(BTCA$B2sO)4XO"9ZAG$N@)8f(B | 7-a | Membranome Cardiolipin-Modified Liposome Isocitrate Dehydrogenase | 12/26 18:00:08 |
800 | $B0[Aj7O3&LL$r!V>l!W$H$9$kL56K@-;i | 4-f | Membranome Squalene Monoepoxidation | 12/26 18:05:11 |
805 | $B%j%]%=!<%`Kl3&LL$G$NIT@FG'<1$N3HD%@-$HG'<1%a%+%K%:%`$N8!F$(B | 12-a | membranome chiral recognition amino acid | 12/26 18:11:18 |
808 | $B%j%s;i | 12-a | Membranome Surface Enhanced Raman Scattering Membrane Property | 12/26 18:14:51 |
Meniscus (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B F-1 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
516 | $B0\N.=8@Q$K$h$k%3%m%$%IN3;R$NCa=x9=B$7A@.$H$=$N@)8f(B | F-1 | Convective Self-Assembly Meniscus Patterned Structures | 12/25 18:49:29 |
meso-porous carbon (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-k (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
750 | $B%+!<%\%s%2%k$rMxMQ$7$?(BC/MnO2$B%J%NJ#9gBN$N9g@.(B | 12-k | electrode material pore structure control meso-porous carbon | 12/26 16:54:23 |
meso-porous silica (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
861 | $B6E=L@-HyN3;R$N@8@.5sF0$K5Z$\$98GAjN3;R$NI=LL9=B$$N1F6A(B | 12-d | PM2.5 meso-porous silica condensable nanoparticles | 12/26 21:23:54 |
Mesoporous Silica (3$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 8-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
280 | $BD6NW3&K!$K$h$kC4;}?(G^D4@=$K8~$1$?%a%=%]!<%i%9%7%j%+$X$N6bB0A06nBN5[CeJ?9UB,Dj(B | 8-b | Supercritical CO2 Mesoporous Silica Adsorption Measurement | 12/24 12:38:39 |
285 | $B5,B'%7%j%+B?9&BN$,<($9LS4I6E=L5sF0$NB.EYO@E*8!F$$H$=$N%b%G%k2=(B | 12-a | capillary condensation mesoporous silica pore size distribution | 12/24 13:22:23 |
774 | $B%"%_%s7O8GBN5[<}:`$N(BCO2$B5[CeFC@-$K$*$1$kC4BN$N8z2L(B | 4-e | Carbon dioxide Amine Mesoporous silica | 12/26 17:21:14 |
metabolic flux analysis (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-f (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
532 | $BBe | 7-a | Metabolic flux analysis Bacillus subtilis Dipicolinic acid | 12/25 19:57:20 |
545 | $BF0J*G]M\:YK&$NBe | 7-f | metabolic flux analysis mammalian cell culture 13C tracer experiment | 12/26 01:04:33 |
Metal (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-c (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
599 | $B:YK&I=AX$r%j%s;@2=$7$?9ZJl$rMQ$$$?6bB0%$%*%s$N2s<}(B | 7-c | Separation Metal Yeast | 12/26 11:38:06 |
Metal Halide (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
142 | $B2=3XC_G.:`NA$N%,%905NO!&29EY@)8f2<$K$*$1$k7k>=9=B$I>2A5;=Q$N9=C[(B | 9-b | Thermal Energy Storage Crystal Structure Metal Halide | 12/18 16:00:09 |
Metal nanoparticle (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 8-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
343 | $BD6NW3&Fs;@2=C:AG$rMQ$$$?B?9&@-G[0L9bJ,;R$X$N6bB0%J%NN3;R$N4^?;(B | 8-e | Supercritical CO2 metal organic framework Metal nanoparticle | 12/24 18:46:57 |
metal nanoparticles (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
675 | $BM-5!GvKlB@M[EECS$N9b8zN(2=$K8~$1$?6bB0%J%NN3;R$NN37B0MB8@-$N8!F$(B | 9-e | organic solar cells metal nanoparticles diameter | 12/26 15:11:04 |
metal organic framework (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 8-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
343 | $BD6NW3&Fs;@2=C:AG$rMQ$$$?B?9&@-G[0L9bJ,;R$X$N6bB0%J%NN3;R$N4^?;(B | 8-e | Supercritical CO2 metal organic framework Metal nanoparticle | 12/24 18:46:57 |
Metal oxide nanoparticle (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-c (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
538 | $B9b<~GHG.%W%i%:%^$K$h$k(BLiMn2O4$B%J%NN3;R$N9g@.(B | 12-c | Thermal plasma Li-based nanoparticle Metal oxide nanoparticle | 12/25 21:35:26 |
metal oxide nanoparticles (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B F-1 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
542 | $BI=LL=$>~;@2=J*%J%NN3;R$h$jD4@=$9$k%J%N%U%k%$%I$NJ*@-$H1~MQ(B | F-1 | surface modification metal oxide nanoparticles viscosity | 12/25 22:52:40 |
metal recycling (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
765 | $B%-%l!<%H:^$rMQ$$$?%P%$%]!<%iKlEE5$F)@O$K$h$k6bB0$N%j%5%$%/%k5;=Q(B | 13-e | metal recycling bipolar membrane electrodialysis chelating agent | 12/26 17:13:25 |
metal reductant (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-f (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
69 | $B>K;@%$%*%s$N%^%$%/%m4T85%7%9%F%`$N3+H/(B | 5-f | microreactor system for reduction metal reductant nitrate ion | 12/17 13:54:20 |
Metal Separation (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-f (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
520 | $BO"7k7?%+%j%C%/%9(B[4]$B%"%l!<%s$K$h$k6bB0$NCj=PJ,N%(B | 4-f | Metal separation calixarene alkali and alkali earth metals | 12/25 19:00:03 |
632 | D2EHAG$B$r%-%c%j%"$H$7$FJq4^$7$?(BPIM$B$K$h$k4uEZN`6bB0$NKlM"Aw(B | 4-e | Polymer Inclusion Membrane Metal Separation New Extractant | 12/26 13:10:00 |
Metal-Organic Frameworks (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-c (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
355 | $B%l%$%d!<@QAX7?B?9&@-G[0L:xBN$NN37B!&7A>u@)8f$H5[CeFC@-$N8!F$(B | 12-c | Metal-Organic Frameworks Gate adsorption Microreactor | 12/24 19:25:22 |
metallic device (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-h (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
566 | $B?)IJMQC1J,;6%(%^%k%7%g%s$r:n@=2DG=$J6bB0@=4SDL9&7?%^%$%/%m%A%c%M%kF}2=4pHD$N3+H/(B | 7-h | Microchannel emulsification monodisperse oil-in-water emulsion metallic device | 12/26 10:09:46 |
Metastable zone width (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
210 | $B=`0BDjNN0h$NBg$-$5$KBP$9$k%5%s%W%kMO1UBN@Q$N1F6A(B | 12-g | Crystallization Nucleation Metastable zone width | 12/22 12:29:42 |
Methanation (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
712 | $B9b29$K$*$1$k%1%_%+%k%R!<%H%H%i%s%9%U%)!<%^!<$N3+H/(B | 9-b | Co-production Steam Methane Reforming Methanation | 12/26 15:59:26 |
methane (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
876 | $B?eED$K@3B)$9$kC&Cb@-%a%?%s;@2=:Y6]$NEZ>m6u4VJ,I[$H%K%C%A(B | 7-g | Nitrogen cycle denitrifying methane-oxidizing bacteria methane | 12/26 22:40:12 |
Methane Fermentation (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
243 | Changes in microbial consortia in the acclimation of granular sludge to glycerol | 13-b | Methane Fermentation Glycerol PCR DGGE | 12/23 11:58:01 |
methanol oxidation reaction (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
282 | DMFC$BMQ(BPtRu$BC4;}(BCeO2$B4^M-%+!<%\%s%J%N%U%!%$%P!(G^$N3+H/(B | 9-e | direct methanol fuel cell (DEMC) methanol oxidation reaction nanofiber catalyst | 12/24 12:48:52 |
methanol reforming (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-f (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
222 | $B%(%C%A%s%0%"%k%_%K%&%`:`NA$rMQ$$$?%^%$%/%m%j%"%/%?$N3+H/(B | 5-f | microreactor structured catalyst methanol reforming | 12/22 16:45:01 |
methanol synthesis (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
739 | $B%$%s%I%M%7%"$KE,9g$7$?Dc%3%9%H%a%?%N!<%k9g@.?(G^(B | 5-a | catalyst methanol synthesis | 12/26 16:43:16 |
Methylcyclohexane (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-a (2$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
169 | $B%9%Q%$%i%k7?(BPt/TiO2$B7O9=B$BN?(G^$K$h$k%a%A%k%7%/%m%X%-%5%s$NC&?eAGH?1~(B | 5-a | methylcyclohexane dehydrogenation spiral-type structured catalyst | 12/19 17:33:00 |
171 | $B;@2==hM}$d(BRe$BE:2C$,(BPt/TiO2$B?(G^$N%a%A%k%7%/%m%X%-%5%sC&?eAGH?1~$K5Z$\$91F6A(B | 5-a | Organic chemical hydride Methylcyclohexane Pt-based catalyst | 12/19 18:14:54 |
Methylcyclohexane dehydrogenation (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
656 | Bimodal catalytic membrane reactors for hydrogen production in the dehydrogenation of methylcyclohexane | 4-a | Membrane reactor Organosilica membrane Methylcyclohexane dehydrogenation | 12/26 14:17:45 |
methyltrichlorosilane (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-h (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
672 | $B%b%N%a%A%k%H%j%/%m%m%7%i%s$rMQ$$$?(BSiC-CVD$B%W%m%;%9$K$*$1$k@=Kl | 5-h | CVD SiC methyltrichlorosilane | 12/26 15:00:58 |
MFI (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
239 | $B79 | 5-a | zeolite MFI para-xylene | 12/22 20:46:39 |
MFI zeolite mebranes (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
440 | $BBQ5W@-!"BQ;@@-$KM%$l$??F?e@-(BMFI$B7?%<%*%i%$%HKl$N@=Kl$H%P%$%*%(%?%N!<%kG;=L%W%m%;%9$X$N1~MQ(B | 4-a | MFI zeolite mebranes bio-ethanol concentration process | 12/25 14:54:27 |
MFI zeolite membrane (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (2$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
474 | $B%U%C2=J*E:2C$K$h$k9b?eAGF)2a%<%*%i%$%HKl$N2~NI(B | 4-a | MFI zeolite membrane porous silica substrate NaF | 12/25 16:40:05 |
855 | MFI$B%<%*%i%$%HKlF)2a$K5Z$\$9%"%k%_%K%&%`E:2C$N1F6A(B | 4-a | MFI zeolite membrane porous silica substrate aluminium | 12/26 20:31:35 |
MFI zeolite membranes (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
549 | $BD6J4:U | 4-a | MFI zeolite membranes ultra-milled seed crystals pervaporation | 12/26 04:21:22 |
MFI-type zeolite membrane (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
579 | $B5[Ce;n83$rMQ$$$?(BNa-ZSM-5$BKl$NKl9=B$$HF)2a@-$N4X78$K$D$$$F$N8!F$(B ($BAaBg@h?JM}9)(B/$BAaBgM}9)Am8&(B/JST-CREST) ($B@5(B)$B>>J}(B $B@5I'!&(B | 4-a | MFI-type zeolite membrane Adsorption Structure | 12/26 10:42:37 |
MHC-epitope fusion protein (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
421 | $B0dEA;RF3F~%K%o%H%j$,@8;:$7$?(BMHC-$B%"%l%k%2%s%(%T%H!<%W4^M-Mq$K$h$k7P8}LH1V<#NE(B | 7-e | Oral immunotherapy MHC-epitope fusion protein Transgenic chicken | 12/25 13:33:50 |