$B:G=*99?7F|;~!'(B2020-09-26 15:59:01
H2 generation (1$B7o(B) | ||||
---|---|---|---|---|
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
597 | Solar-light-driven Water Splitting for Hydrogen Evolution by A Novel TiO2 Based Photocatalyst | 9-e | Solar-light-driven P/Ag/Ag2O/Ag3PO4/TiO2 photocatalyst Water splitting H2 generation | 12/21 15:38:36 |
Haematococcus pluvialis (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
480 | pH-stat$BN.2CG]M\$K$h$k%"%9%?%-%5%s%A%s@8;:6](BHaematococcus pluvialis$B$N9bL)EYG]M\(B | 7-a | Haematococcus pluvialis astaxanthin fed-batch culture | 12/20 17:49:33 |
Hansen solubility parameter (3$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 1-b (2$B7o(B), 1-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
111 | Walden$B%W%m%C%H$rMQ$$$?%$%*%s1UBN$N(BHansen$BMO2rEY%Q%i%a!<%?I>2A(B | 1-e | Hansen solubility parameter ionic liquid Walden plot | 12/16 14:55:56 |
619 | $B2VJ4N3;RI=LL$N(BHansen$BMO2rEY%Q%i%a!<%?$NB,Dj$*$h$S6u5$Cf$N2VJ4=|5n$X$N1~MQ(B | 1-b | Hansen solubility parameter Physical property Pollen | 12/21 17:49:23 |
630 | $B=E9gEY$N0[$J$k%]%j%^!<$N(BHansen$BMO2rEY%Q%i%a!<%?$NB,Dj(B | 1-b | Hansen solubility parameter Polymer Polymerization | 12/21 19:19:49 |
Heat and mass transfer coefficients (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B IS-1 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
5 | $B= | IS-1 | Heat and mass transfer modeling Heat and mass transfer coefficients Packed column distillation | 11/11 15:55:26 |
Heat and mass transfer modeling (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B IS-1 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
5 | $B= | IS-1 | Heat and mass transfer modeling Heat and mass transfer coefficients Packed column distillation | 11/11 15:55:26 |
Heat exchange (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 6-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
795 | $BJ#?t2r$N7OE}E*Ds<($K;q$9$kG.8r494o%M%C%H%o!<%/9g@.%D!<%k$N3+H/(B | 6-e | Heat exchange Optimization | 12/22 23:34:28 |
Heat exchanger (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B F-1 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
70 | $BB?CJ7?@xG.C_G.<0G.8r49%7%9%F%`$N3+H/$H@-G=I>2A(B | 3-c | Heat exchanger Ratent Heat storage Heat transfer | 12/9 12:50:13 |
280 | [$B0MMj9V1i(B] $B@PL}2=3X%W%i%s%H@_Hw$NDc05>x5$MxMQG.8r494o$GH/@8$7$?B;=};vNc(B | F-1 | water droplet impingement erosion-corrosion heat exchanger | 12/19 13:10:54 |
Heat Recovery (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
65 | $B%+!<%\%s=[4D%a%?%s2=%7%9%F%`!!!=(B $BG.<+N)7?FsCJ%a%?%s2=H?1~4o$N@-G=(B $B!=(B | 13-g | CCU Methanation Heat Recovery | 12/6 18:15:50 |
Heat storage (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
610 | CO2$B5[<}:^$HC_G.:`$r0lBN2=$7$?%^%$%/%m%+%W%;%k$N3+H/(B | 4-d | Carbon dioxide capture Heat storage Microfluidics | 12/21 16:35:53 |
741 | $B@xG.(B/$B2=3XC_G.5!G=$rM-$9$k%O%$%V%j%C%I%^%$%/%m%+%W%;%k$N3+H/(B | 9-b | heat storage phase change material thermochemical material | 12/22 18:48:10 |
Heat storage tank (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
133 | $BmU | 9-b | Regenerative burner system Ceramics Heat storage tank | 12/17 15:12:28 |
Heat transfer (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
70 | $BB?CJ7?@xG.C_G.<0G.8r49%7%9%F%`$N3+H/$H@-G=I>2A(B | 3-c | Heat exchanger Ratent Heat storage Heat transfer | 12/9 12:50:13 |
279 | $B6bB0?eAG2=J*$X$N?eAGN.DL$K$h$kG.6!5k$H?eAGJ|=P@)8f$N%7%_%e%l!<%7%g%s(B | 9-e | Magnesium hydride Hydrogen storage Heat transfer | 12/19 13:07:38 |
Heat transfer coefficient (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
79 | $B%(%A%l%s%0%j%3!<%k$r | 9-b | Nanofluid Heat transfer coefficient Dispersibility | 12/12 08:35:27 |
Heat transfer oil (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B SP-9 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
212 | [$B>7BT9V1i(B] $BG.G^%\%$%i! | SP-9 | Hot oil heater Heat transfer oil Diagnostics | 12/18 16:32:10 |
heatstroke (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 10-i (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
325 | $B=kG.4D6-$G$NG.Cf>IM=KI$rL\E*$H$7$?G"Hf=ECMH=Dj%0%C%:$N3+H/(B | 10-i | specific gravity hot environment heatstroke | 12/19 17:19:52 |
heavy metal (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
438 | $B%<%*%i%$%H$K$h$k;@@-9[;3GQ?eCf$N=E6bB0%$%*%s$NJ?9U5[Ce(B | 4-e | zeolite heavy metal acid mine drainage | 12/20 15:42:28 |
682 | $B%$%*%s@-9bJ,;R%2%k$rMQ$$$?=E6bB04^M-7z@_1xE%$N%j%5%$%/%k(B | 12-e | polymer gel heavy metal sludge treatment | 12/22 12:33:47 |
heavy oil (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 3-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
392 | $BCf@-;R%i%8%*%0%i%U%#$rMQ$$$?D6NW3&?eCf$N=E | 3-a | neutron radiography heavy oil supercritical water | 12/20 12:08:01 |
Henderson-Hasselbalch equation (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B X-51 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
97 | [$BIt2q>^(B] $B2=3XH?1~A08e$NN.BN$NJ*@-CM$G$OM=B,$G$-$J$$9bJ,;RH?1~N.$NN.F0%@%$%J%_%/%9(B: ATR-FTIR$BJ,8wK!$K$h$kJ,;R?GCG$rH<$&N.BNNO3X(B | X-51 | Fe3+ aqua complex Henderson-Hasselbalch equation Weissenberg effect | 12/14 15:39:17 |
Henry coefficient (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
349 | CO2$B5[<}Ec$+$i$NHyNL%"%_%s>x5$$N2s<}5;=Q$K4X$9$k8&5f(B | 4-d | Convectional Mass Transfer Henry coefficient FT-IR | 12/19 21:16:22 |
hepatocyte (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
707 | $B4N5!G=$N%\%H%`%"%C%WE*M}2r$K8~$1$?%7%s%0%k3K0dEA;RH/8=2r@O(B | 7-d | Single-nucleus RNA sequencing binucleated cell hepatocyte | 12/22 15:02:41 |
hepatocytes (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
160 | $B%H%l%O%m!<%9$r4pHW$H$7$?:YK&E`7kJ]8n:^$N3+H/(B | 7-e | cryoprotectant trehalose hepatocytes | 12/17 21:43:35 |
hepatoma cell (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
684 | $B9b4N5!G=$rM6F32DG=$J%R%H%X%Q%H!<%^:YK&3t$N:n@=(B | 7-d | hepatoma cell liber-enriched transcription factor inducible gene expression system | 12/22 12:35:43 |
Hetero interface (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
488 | $B;@2=J*%$%*%s!&EE;R:.9gEAF3BN$N0[Aj3&LL$K$*$1$kEE5$2=3XE*FC@-I>2A(B | 9-e | Hetero interface Scanning probe microscopy Solid Oxide Fuel Cell | 12/20 18:10:00 |
Heterogeneous Catalyst (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
68 | CO2$B$N%a%?%s2=$K$*$1$k(BCO2$BN.NL$NF0E*JQF0$N1F6A(B | 13-g | CO2 Methanation Heterogeneous Catalyst dynamic fluctuation of CO2 | 12/9 09:30:47 |
Heterologous expression (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
311 | $BH/8=%[%9%H$N0c$$$K$h$k9b6E=8@-%?%s%Q%/ | 7-a | Autogglutination Heterologous expression Bacteria | 12/19 15:25:08 |
Hexagonal Boron Nitride (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-i (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
506 | $B9bJ,;R%7!<%HCf$X$NCb2=%[%&AGHD>uN3;R$N?bD>G[8~!&9bL)EY= | 12-i | Thermal Interface Material Hexagonal Boron Nitride Vertical alignment | 12/20 18:54:18 |
HiBiT (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
411 | $B%O%$%V%j%I!<%^:YK&$N%2%N%`JT=8$K$h$k%*!<%W%s%5%s%I%$%C%ALH1VB,DjMQ?M9)93BN$N@8;:(B | 7-a | antibody engineering CRISPR-Cas9 HiBiT | 12/20 13:58:36 |
hierarchical HZSM-5 catalysts (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
54 | Enhancement of aromatics production from catalytic upgrading of bio-oil over hierarchical HZSM-5 | 5-e | Biomass hierarchical HZSM-5 catalysts aromatic hydrocarbons | 12/3 18:56:28 |
hierarchical structure control (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-h (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
515 | X$B@~4IMQ%+!<%\%s%J%N%A%e!<%VEE3&J|=PEE;R8;$N:n@=$H3,AX9=B$@)8f(B | 5-h | carbon nanotube electron field emitter hierarchical structure control | 12/20 19:10:32 |
Hierarchical structures (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
789 | $BB?9&@-G[0L:xBNHyN3;R$N5e>u=8@Q9=B$$N:n@=$H5[CeFC@-I>2A(B | 12-a | Metal-organic frameworks Hierarchical structures Microfluidic device | 12/22 23:12:56 |
High Pressure (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B K-4 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
813 | Electrical Reactive Crystallization in Batteries at High Pressure | K-4 | Electrical Reactive Crystallization High Pressure Batteries | 12/23 19:25:07 |
high pressure condition (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
538 | $B9b052<$K$*$1$k%<%*%i%$%HKl$N(BCO2$BJ,N%FC@-$K4X$9$k7W;;2=3XE*8!F$(B | 4-a | Non equilibrium molecular dynamics zeolite membrane high pressure condition | 12/20 20:42:24 |
high temperature characteristics (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
759 | $BIi6K%0%i%U%!%$%H$N5$Aj=$>~$K$h$k(BLIB$B$N9b29J]B8@-G=8~>e(B | 9-e | lithium ion battery graphite high temperature characteristics | 12/22 20:56:11 |
High temperatures (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
163 | $B%U%CAG7O%7%j%+Kl$N?eG.0BDj@-(B | 4-a | Fluorine-silica Hydrothermal stability High temperatures | 12/18 09:40:55 |
High Viscocity (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 2-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
11 | $B0[G4EYN.BN:.9g5;=Q$N8!F$(B | 2-b | Mixing Impeller High Viscocity | 11/22 11:25:11 |
high viscosity fluid (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 2-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
415 | $B9bG4@-N.BN$KFC2=$7$?%7%_%e%l!<%7%g%s | 2-a | high viscosity fluid particle method numerical simulation | 12/20 14:08:32 |
High Viscous Liquid (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 2-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
80 | $B9bG4@-N.BNCf$G$N3KJ(F-$K$h$k5$K"$NO"B3@8@.5sF0$N?tCM2r@O(B | 2-e | Nucleate Boiling Bubble Formation High Viscous Liquid | 12/12 11:05:41 |
High-density seeding (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
128 | Quantitative observation of spatial uniformity for stable high-density seeding process of human induced pluripotent stem cells | 7-a | High-density seeding spatial uniformity human induced pluripotent stem cells | 12/17 14:13:42 |
High-performance distributors (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B SP-10 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
258 | [$B>7BT9V1i(B] $B1x$l(B($BJD:I(B)$B7O%W%m%;%9$X$ND)@o(B!$BO"B31?E>$r2DG=$K$9$k9b@-G=%G%#%9%H%j%S%e!<%?!<$NFCD'$K$D$$$F(B | SP-10 | Packed Column Dirt process High-performance distributors | 12/19 10:46:18 |
High-speed visualization (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 3-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
764 | $B%"%k%4%s(B-$BCbAGJ70O5$$K$*$1$kB?Aj8rN.%"!<%/$N29EYJQF0(B | 3-b | Thermal plasma High-speed visualization Nanoparticle | 12/22 21:07:11 |
Highly Efficient Power Generation (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B K-3 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
766 | [$B%"%8%"9q:]>^(B] Analysis and Design of Solid Oxide Fuel Cell Systems for Highly Efficient Power Generation | K-3 | SOFC Analysis Highly Efficient Power Generation | 12/22 21:21:05 |
HMF (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
87 | HMF$B9g@.$K$_$k%P%$%*%^%9$+$i$N2=@.IJ@=B$$K$*$1$kJ,N%@:@=7O$NA*Dj(B | 5-g | HMF biomass separation | 12/13 14:06:47 |
146 | [$B0MMj9V1i(B] $B%^%$%/%m5;=Q$rMxMQ$7$?%P%$%*%^%9$+$i$NM-2AJ*@=B$(B | HQ-21 | Segmented flow HMF Extraction | 12/17 16:55:46 |
Hollow fiber membrane (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B SP-10 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
253 | [$B>7BT9V1i(B] MBR($BKlJ,N%3h@-1xE%K!(B)$B$rMxMQ$7$?GS?e=hM}(B ($B;0I)%1%_%+%k%"%/%"!&%=%j%e!<%7%g%s%:(B) ($BK!(B)$B6b;R(B $B??(B | SP-10 | Membrane Bio Reactor Wastewater treatment Hollow fiber membrane | 12/19 10:24:02 |
586 | $B29EY1~Ez@-%]%j%^!<$r=$>~$7$?%$%s%9%j%s$K$h$k(BCHO$B:YK&$N^uN.G]M\(B | 7-a | Perfusion culture Hollow fiber membrane Insulin | 12/21 14:15:35 |
hollow fiber membranes (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
687 | Effect of carbonization condition on gas permeation properties of carbon hollow fiber membranes | 4-a | carbon molecular sieve membranes hollow fiber membranes gas separation | 12/22 12:41:59 |
hollow particles (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B HC-12 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
317 | [$B0MMj9V1i(B] $BHy>.6u4V$G$N%3%m%$%I1?F0$rMxMQ$7$??7$7$$:`NA$NAO@=(B | HC-12 | hollow particles particle assembly movable cores | 12/19 15:52:51 |
Homogeneity (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
623 | Anti-solvent$B>=@OK!$K$h$k6&7k>=N3;R72$N(BHomogeneity$BI>2A(B | 12-g | Crystallization Cocrystal Homogeneity | 12/21 18:25:53 |
honeycomb rotor (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
58 | $B%O%K%+%`%m!<%?Fs;@2=C:AGJ,N%K!$N%V%l!<%/%9%k!<(B | 13-g | honeycomb rotor carbon dioxide adsorption | 12/5 09:31:32 |
Horizontal cylindrical vessel (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 2-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
115 | $BKm7?5$K"Ae$NAe7B!"AeD9$*$h$S;65$4I7B$,<+Ne?6F0H/@8$K5Z$\$91F6A(B | 2-d | Horizontal cylindrical vessel bubble-induced oscillation liquid sloshing | 12/16 17:02:13 |
host-guest interaction (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
282 | $BB?9&@-%J%N7k>=$KJq@]$5$l$?M-5!J,;R$NH/8w@)8f(B | 12-d | nano-sized effect metal organic framework host-guest interaction | 12/19 13:16:37 |
Hot compressed water-methanol (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 8-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
599 | $B9b299b05>uBV$N?e(B-$B%a%?%N!<%kMOG^$,8GBN;@?(G^H?1~$K5Z$\$91F6A(B | 8-b | Hot compressed water-methanol Solid acid catalyst Pinene isomerization | 12/21 16:02:06 |
hot environment (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 10-i (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
325 | $B=kG.4D6-$G$NG.Cf>IM=KI$rL\E*$H$7$?G"Hf=ECMH=Dj%0%C%:$N3+H/(B | 10-i | specific gravity hot environment heatstroke | 12/19 17:19:52 |
hot filament (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
278 | Energy efficient H2 production via NH3 thermolysis using Ni-coated hot filament | 9-e | ammonia thermolysis hydrogen production hot filament | 12/19 13:07:02 |
Hot oil heater (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B SP-9 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
212 | [$B>7BT9V1i(B] $BG.G^%\%$%i! | SP-9 | Hot oil heater Heat transfer oil Diagnostics | 12/18 16:32:10 |
human induced pluripotent stem cells (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
128 | Quantitative observation of spatial uniformity for stable high-density seeding process of human induced pluripotent stem cells | 7-a | High-density seeding spatial uniformity human induced pluripotent stem cells | 12/17 14:13:42 |
human iPS cell (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
155 | iPS$B:YK&<+F0G]M\$K$*$1$kGE | 7-a | human iPS cell regenerative medicine cell seeding | 12/17 18:41:26 |
human pluripotent stem cells (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
49 | $B%R%H?M9)B?G=@-44:YK&$NE`7kJ]B8$K$*$1$kCYH/E*:YK&Nt2=$N2r | 7-a | human pluripotent stem cells cryopreservation tardive cell death | 12/2 19:20:24 |
humic acids (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-i (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
669 | $B3lAt$X$NE45[<}NLA}2C$K5Z$\$9%U%_%s;@$N1F6A(B | 13-i | Iron bioavailability humic acids brown algae | 12/22 09:44:00 |
huronic acid (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B HQ-21 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
404 | [$B0MMj9V1i(B] $B9b299b05?e$*$h$S9b05Fs;@2=C:AG$rMQ$$$?@8BN:`NA$ND4@=(B | HQ-21 | huronic acid liposome biomaterials | 12/20 13:41:30 |
hyaluronan binding protein (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
247 | $B%R%"%k%m%s;@FC0[E*7k9gG=$r;}$D5!G=2=%j%s%/%b%8%e!<%k$N3+H/(B | 7-e | hyaluronan binding protein transglutaminase link module | 12/19 09:50:45 |
Hydrate (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 1-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
714 | CH4/N2$B:.9g%,%9%O%$%I%l!<%H$N(BTetrahydrofuran$BE:2C$K$h$k2rN%29EY$X$N1F6A(B | 1-a | Hydrate Separation Dissociation temperature | 12/22 15:49:57 |
Hydrodeoxygenation (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B HQ-21 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
200 | [$B0MMj9V1i(B] $B9bL)EYC:AGC4;}F | HQ-21 | Hydrodeoxygenation Carbon supported copper catalyst Polyols | 12/18 15:43:22 |
Hydrodynamics (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 2-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
137 | $BJ,;RF0NO3X%7%_%e%l!<%7%g%s$ON.BNNO3X$r$I$3$^$G5-=R$G$-$k$N$+!)(B:$BN.BNNO3XH>7B$NJ,;RO@E*$JIAA|(B | 2-a | molecular dynamics simulation hydrodynamics Brownian motion | 12/17 15:43:41 |
333 | $B%H%j%/%k%Y%C%I%j%"%/%?Fb$N1UN.$l$KM?$($k1UN.NL5Z$S= | 5-e | Trickle bed reactor Hydrodynamics Bed condition | 12/19 18:14:15 |
hydrogel (8$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-e (3$B7o(B), 12-e (2$B7o(B), IS-1 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
263 | $BMM!9$JAH@.$N%2%k4pHD>e$K$*$1$k:YK&M7Av;n83$N$?$a$N(Binkjet$B<0%W%j%s%F%#%s%0$K$h$k:YK&%Q%?!<%K%s%0(B | 7-e | hydrogel inkjet printing cell patterning | 12/19 11:04:11 |
419 | Microfluidic emulsion-based external gelation to design magnetic Janus hydrogels | IS-1 | Microfluidic Hydrogel Janus | 12/20 14:26:10 |
430 | $B8w2M66@-%<%i%A%s$rMQ$$$?B?9&@-%O%$%I%m%2%k$NHy:Y2C9)$H:YK&G]M\(B | 7-e | tissue engineering cell culture hydrogel | 12/20 15:16:03 |
486 | Development of N, N dimethyl propyl amine conjugated hyaluronic acid zwitterionic hydrogel | 12-e | Hydrogel zwitterionic pH responsive | 12/20 18:06:10 |
520 | $B9ZAGCg2p7?%2%k2=%W%m%;%9$N9b8zN(2=$K8~$1$?E:2C:^$N8z2L(B | 7-a | hydrogel Enzymatic cross-linking Peroxidase | 12/20 19:34:16 |
558 | 2$B$D$N9ZAGH?1~$rAH$_9g$o$;$?(B3D$B%P%$%*%W%j%s%F%#%s%05;=Q$N3+H/(B | 7-e | hydrogel bioprinting tissue engineering | 12/20 23:48:24 |
777 | $BDcFG@-$H%2%k2=G=$rN>N)$7$?C;:?%Z%W%A%I%2%k2=:^(B | 7-i | peptide self-asembly hydrogel | 12/22 22:25:47 |
801 | $B%$%*%s@-9bJ,;R%2%k$rMQ$$$?6bB0%$%*%s$N7OE}J,N%2s<}(B | 12-e | hydrogel metal ion systematic separation | 12/22 23:48:42 |
Hydrogel microwell (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
472 | Direct implantation of $B&B(B cell aggregates using a hydrogel microwell device | 7-e | Hydrogel microwell Spheroid Insulinoma | 12/20 17:20:44 |
Hydrogen (4$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
34 | [$B>7BT9V1i(B] CO2$B$rC:AG8;$H$7$?%W%i%9%A%C%/86NA@=B$(B | SS-6 | Hydrogen Carbon Recycle Olefin | 12/2 15:46:04 |
176 | [$B>7BT9V1i(B] $B>-Mh$N%(%M%k%.!<%7%9%F%`$K$*$1$k?eAG%(%M%k%.!<$X$N4|BT(B | SS-1 | Hydrogen Energy System Decarbonization | 12/18 12:56:39 |
206 | $B2C2=%,%9$+$i9b=cEY?eAG$r@=B$$9$k%7%j%+KlH?1~4o$N3+H/(B | 4-a | Biogases by sewage sludge Silica membrane reactor Hydrogen | 12/18 16:16:49 |
390 | $B?eAG@=B$H?1~$N=V;~5/F0$r;V8~$7$?%"%s%b%K%";@2=J,2r$N%3!<%k%I%9%?!<%H(B | 5-a | hydrogen energy carrier renewable energy | 12/20 12:01:04 |
hydrogen bonding (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
718 | $B%"%_%m%$%I7A@.AK328=>]$K4p$E$/%?%s%Q%/2A(B | 12-g | supersaturation amyloid hydrogen bonding | 12/22 16:14:22 |
Hydrogen carrier (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B K-3 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
771 | [$B>7BT9V1i(B] Nano-catalyst Engineering for Hydrogen Storage and Delivery Utilizing Formic Acid as a Carrier | K-3 | Hydrogen carrier Formic acid Catalyst | 12/22 21:36:31 |
Hydrogen fermentation (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
685 | $BF};@$NBe | 13-b | Hydrogen fermentation co-culture lactate | 12/22 12:37:23 |
Hydrogen Peroxide (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
420 | $B?e$+$i$N;@2=E*$J(BH2O2$B9g@.$N9b8zN(2=$rL\;X$7$?(BBiVO4$B8wEE6K$X$N%"%k%+%jEZN`6bB0$NF3F~(B | 9-e | Photoelectrochemistry Hydrogen Peroxide Anode Reaction | 12/20 14:33:00 |
Hydrogen Production (4$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-e (3$B7o(B), 5-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
52 | A process design for hydrogen production by combining tar reforming and a chemical looping process for char conversion | 9-e | Process design Hydrogen production Biomass | 12/3 18:05:58 |
274 | $B?eAGF)2a%Q%i%8%&%`Kl$rMQ$$$??eEE2r$K$*$1$k%;%kFC@-I>2A(B | 5-d | Hydrogen Production Palladium membrane Electrolysis of water | 12/19 12:15:49 |
278 | Energy efficient H2 production via NH3 thermolysis using Ni-coated hot filament | 9-e | ammonia thermolysis hydrogen production hot filament | 12/19 13:07:02 |
339 | $B9b8zN(%"%k%+%j?eEE2r$N$?$a$N%+!<%\%s%J%N%A%e!<%VKl%Y!<%9;0 | 9-e | Carbon nanotube Hydrogen production alkaline water electrolysis | 12/19 19:12:30 |
Hydrogen Purifier (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B SP-10 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
250 | [$B>7BT9V1i(B] $B%"%s%b%K%"J,2r%,%9$r86NA$H$9$k(BFCV$BMQ9b=cEY?eAG@:@=AuCV$N3+H/(B | SP-10 | Hydrogen Purifier Ammonia Fuel Cell Vehicle | 12/19 10:10:29 |
hydrogen spillover (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
804 | $B6bB0J,;6%+!<%\%s%J%N%[!<%s$rMQ$$$??eAGCyB"$K4X$9$k8&5f(B | 12-d | carbon nanohorn hydrogen storage hydrogen spillover | 12/22 23:56:32 |
hydrogen storage (5$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-e (3$B7o(B), 12-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
279 | $B6bB0?eAG2=J*$X$N?eAGN.DL$K$h$kG.6!5k$H?eAGJ|=P@)8f$N%7%_%e%l!<%7%g%s(B | 9-e | Magnesium hydride Hydrogen storage Heat transfer | 12/19 13:07:38 |
347 | $B%7%j%+C4;}(BPt$B?(G^$rMQ$$$?(BMCH$BC&?eAGH?1~$*$h$S?(G^Kl$N:n@=(B | 4-a | catalytic membrane reactor organic hydride hydrogen storage | 12/19 20:53:32 |
418 | Mg$B$N?eAG5[B"FC@-$KBP$9$k6bB0;@2=J*$NHy:Y9=B$$*$h$S?(G^5!9=$N8!F$(B | 9-e | Magnesium hydride Hydrogen storage Catalytic mechanism | 12/20 14:13:07 |
692 | $B6bB0;@2=J*$rMQ$$$??eAG%(%M%k%.! | 9-e | Hydrogen storage Metal oxides Steam electrolysis | 12/22 13:20:32 |
804 | $B6bB0J,;6%+!<%\%s%J%N%[!<%s$rMQ$$$??eAGCyB"$K4X$9$k8&5f(B | 12-d | carbon nanohorn hydrogen storage hydrogen spillover | 12/22 23:56:32 |
Hydrogen sulfide (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
723 | Fe$B7O?(G^$N3J;RN22+$r3hMQ$7$?Dc5i%"%k%+%s(B(C2-C4)$B$NC&?eAG(B:$B5$Aj(BH2S$B$NB%?J8z2L(B | 5-a | Hydrogen sulfide Dehydrogenation Fe | 12/22 16:36:04 |
hydrogenation (3$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-a (2$B7o(B), 5-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
14 | Pd$B7O?(G^$K$h$k(B2-$B%/%m%m%W%m%Z%s$NA*BrE*?eAG2=H?1~(B | 5-a | Pd catalyst 2-chloropropene hydrogenation | 11/25 10:42:10 |
580 | $B%j%0%K%s$N5^B.G.J,2rFC@-$K5Z$\$9;vA0?eAG2==hM}$N1F6A(B | 5-g | lignin hydrogenation catalytic fast pyrolysis | 12/21 13:10:13 |
720 | SnPt$B%J%NN3;R?(G^$N(BSn/Pt$B86;RHf$,?];@$N?eAG2=H?1~$K5Z$\$91F6A(B | 5-a | SnPt bimetallic nanoparticles Hydrogenation Acetic acid | 12/22 16:27:41 |
hydrolysis (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
571 | $B1v4p@-G.?e$K$h$k(BWhitewood$B$N2C?eJ,2r$K$*$h$\$9H?1~>r7o$N1F6A(B | 5-g | Whitewood hydrolysis basic solution | 12/21 10:29:35 |
hydrometallurgy (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-i (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
10 | $BM-5!2&?e$rMQ$$$?2+F<9[(B (CuFeS2) $B?;=P%W%m%;%9$N3+H/(B | 13-i | hydrometallurgy chalcopyrite dimethyl sulfoxide | 11/21 17:19:20 |
hydrophilic drugs (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
161 | Gel-in-Oil$B%(%^%k%7%g%s$N3+H/$K$h$k?F?e@-LtJ*$N7PHiAwC#(B | 12-b | gel in oil emulsion transdermal delivery hydrophilic drugs | 12/17 22:47:29 |
hydrophilic homopolymer (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-j (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
729 | $B?F?e@-%[%b%]%j%^!<$N(BATRP$BK!$rMQ$$$?9g@.$*$h$S0e2J;u2J:`NA$H$7$F$NJ*@-I>2A(B | 12-j | ATRP hydrophilic homopolymer | 12/22 17:08:41 |
hydrophobic interaction chromatography (HIC) (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B SP-10 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
254 | [$B>7BT9V1i(B] $B%/%m%^%H%0%i%U%#! | SP-10 | chromatography hydrophobic interaction chromatography (HIC) ion exchange chromatography (IEX) | 12/19 10:33:06 |
Hydrophobic silica membrane (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
629 | $BAB?e@-%7%j%+Kl$N:Y9&7B@)8f$*$h$S?;F)5$2=J,N%$X$N1~MQ(B | 4-a | Hydrophobic silica membrane Separation Pervaporation | 12/21 19:19:35 |
hydrophobic zeolite membrane (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B HQ-21 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
106 | [$B0MMj9V1i(B] $BAB?e@-%<%*%i%$%HKl$N9g@.(B | HQ-21 | hydrophobic zeolite membrane silicalite-1 porous material | 12/16 11:57:33 |
hydrothemal (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 8-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
644 | $B%"%_%sE:2CG.?e$K$h$kC:AGA!0]6/2=%W%i%9%A%C%/$N | 8-d | hydrothemal CFRP amine | 12/21 22:48:47 |
Hydrothermal (5$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 8-d (2$B7o(B), 12-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
332 | $BG.?e>r7o2<$K$*$1$k(Bpoly(butylene terephthalate)$B$N2r=E9g$K$*$h$\$9E:2C%"%_%s | 8-d | poly(butylene terephthalate) depolymerization hydrothermal | 12/19 17:34:54 |
493 | $B1v4p@-G.?e$rMQ$$$?(BFluorobenzene$B$NC&%U%CAG2=$NH?1~5!9=(B | 8-d | hydrothermal defluorination fluorobenzene | 12/20 18:31:10 |
676 | $B?eG.M-5!=$>~$K$h$k;@2=J*%J%NN3;R$NO*=PLL@)8f$HDc29;@AGCyB"G=(B | 12-d | Facet control Hydrothermal Oxygen storage capacity | 12/22 10:50:46 |
722 | polygalacturonic acid$B$NG.?eJ,2r$K$h$jF@$i$l$?E|N`$rHoKl$7$?(Bibuprofen$B7k>=$N@8@.(B | 12-g | Hydrothermal Ibuprofen Coating with sugar | 12/22 16:29:27 |
733 | $B1v4p@-G.?e$K$h$k(Bpolyurethane$B$N2r=E9g$K$*$1$k@8@.J*<}N($K$*$h$\$9A`:n0x;R$N1F6A(B | 13-e | hydrothermal polyurethane aqueous basic solution | 12/22 17:49:21 |
Hydrothermal Oxidation Decomposition (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
322 | $B%U%'%N!<%k$N?eG.;@2=J,2r$K$*$1$kE47O:`NA$N?(G^8z2L(B | 13-b | Fenton Reaction Hydrothermal Oxidation Decomposition Phenol | 12/19 16:53:15 |
Hydrothermal stability (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
163 | $B%U%CAG7O%7%j%+Kl$N?eG.0BDj@-(B | 4-a | Fluorine-silica Hydrothermal stability High temperatures | 12/18 09:40:55 |
Hydrothermal synthesis (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 8-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
188 | $B%5%$%:!&J,I[$N@)8f$K8~$1$?FsCJ%U%m! | 8-e | Hydrothermal synthesis cerium oxide dual-stage flow reactor | 12/18 14:36:10 |
358 | $B%9%/%"%j%s;@$rMQ$$$?(BTi$B7O%J%N7k>=$NA*BrE*9g@.(B | 12-d | Hydrothermal synthesis Crystal growth TiO2 | 12/20 07:07:59 |
Hydroxyapatite (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-c (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
498 | $B%O%$%I%m%-%7%"%Q%?%$%H$rMQ$$$?<#NEMQ9ZAG%R%H(BKynureninase$B$N9b8zN(J,N%(B | 7-c | Recombinant protein Kynureninase Hydroxyapatite | 12/20 18:40:06 |