$B:G=*99?7F|;~!'(B2017-05-20 20:59:01
p-median (1$B7o(B) | ||||
---|---|---|---|---|
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
802 | $B?eAG%9%F!<%7%g%s$N8zN(E*G[CV$K4X$9$k8&5f(B | 9-e | hydrogen station p-median flow capturing | 12/22 19:59:17 |
packed column (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-c (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
210 | $B= | 4-c | packed column HETP efficiency | 12/19 12:38:13 |
Packed Column Distillation (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-c (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
4 | $B= | 4-c | Mass Transfer Packed Column Distillation HTU | 11/14 11:45:55 |
PAHs (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 3-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
456 | $BB?4DK'9aB2C:2=?eAG$N@8@.NL$NM=B,@:EY$N8~>e$rL\E*$H$7$?>\:Y2=3XH?1~5!9=$N2~NI(B | 3-b | detailed kinetic mechanism PAHs pyrolysis | 12/21 18:38:17 |
paint with high UR emissivity (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B SS-5 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
48 | $BDcHfG.!"9bJ| | SS-5 | energy saving paint with high UR emissivity time-dependent heat conduction analysis | 12/8 16:01:22 |
palladium (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
328 | $B9bG4@-9bJ,;RMO1UCf$KJ,;6$7$?%Q%i%8%&%`$N9bJ,;RD@EB$rMQ$$$?2s<}(B | 4-b | palladium recovery polymer precipitation | 12/21 08:42:12 |
825 | $B9b3h@-$*$h$SD9 | 12-e | nanogel catalyst palladium | 12/22 21:17:54 |
Palladium catalyst (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
818 | $B%5%$%:@)8f$5$l$?%2%k%M%C%H%o!<%/$NN.DL<0?(G^H?1~$X$N1~MQ(B | 5-a | Polymer gel Palladium catalyst Continuous-flow system | 12/22 20:53:11 |
palladium membrane (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
76 | $BB?9&e$K@=Kl$7$?(BPd$BKl$N?eAGF)2a@-8~>e$r$a$6$7$?%7%j%+%i%$%HCf4VAX$N7A@.>r7o$N8!F$(B | 4-a | Hydrogen permeation enhancement Palladium membrane Silicalite intermediate layer | 12/9 12:10:26 |
776 | $B4IJI7?%a%s%V%l%s%j%"%/%?!<$K$h$k%"%s%b%K%"$NDc29J,2r(B | 5-d | wall-tube reactor palladium membrane ammonia | 12/22 18:51:42 |
Paper (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
849 | $B8E;f$NG.J,2r$K$h$kM-MQ2=9gJ*$N@=B$(B | 5-g | Pyrolysis Cellulose Paper | 12/22 23:06:56 |
parameter (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 1-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
97 | Wilson$BDj?t$N29EY0MB8@-(B | 1-a | vapor-liquid equilibria Wilson equation parameter | 12/12 14:56:27 |
Parameter estimation (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 8-c (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
579 | $BD6NW3&N.BN%/%m%^%H%0%i%U%#!<$K$h$k%-%i%kJ,N%2aDx$N2r@O(B | 8-c | Parameter estimation Supercritical fluid chromatography Chiral separation | 12/22 12:09:03 |
Partial oxidation of benzene (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
576 | $BH?1~J,N%$rMQ$$$?%Y%s%<%sItJ,;@2=H?1~%7%9%F%`$K$*$1$kH?1~>l$N8!F$(B | 5-d | Bi-phase system Partial oxidation of benzene Reaction separation system | 12/22 11:59:52 |
Particle Charging (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 2-f (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
164 | $B?6F0$H30ItEE>l$rMxMQ$7$?HyN3;R$NO"B3J,;66!5k5!9=$N8!F$(B | 2-f | External electric field Vibration Particle Charging | 12/16 13:03:44 |
particle diameter (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
420 | $BEE>l$N0u2C$K$h$k%J%NN3;R$N:YK&KlF)2a8=>]$NJ,;RF0NO3X2r@O(B: $BN3;R%5%$%:$N1F6A(B | 12-a | nanoparticle cell membrane particle diameter | 12/21 16:18:50 |
Particle Flocculation (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-i (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
84 | $B?eCf$K>H | 4-i | Particle Flocculation Particle Image Velocimetry Ultrasound | 12/11 14:47:12 |
Particle Image Analysis (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 2-f (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
258 | $BN3;R2hA|J,@O5;=Q$r4p<4$K$7$?%9%W%l!<%I%i%$9)Dx$K$*$1$k%G%#%9%/2sE>?t$HN3;R7ABV$N4X78@-(B | 2-f | Spray Drying Particle Image Analysis Particle Morphology | 12/20 10:55:48 |
Particle Image Velocimetry (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 2-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
34 | $B2;>lCf$KJaB*$7$?N3;R$K:nMQ$9$kNO$N9M;!(B | 2-e | Acoustic Cavitation-Oriented Bubble Visualization Particle Image Velocimetry | 12/7 09:51:54 |
84 | $B?eCf$K>H | 4-i | Particle Flocculation Particle Image Velocimetry Ultrasound | 12/11 14:47:12 |
Particle Morphology (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 2-f (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
258 | $BN3;R2hA|J,@O5;=Q$r4p<4$K$7$?%9%W%l!<%I%i%$9)Dx$K$*$1$k%G%#%9%/2sE>?t$HN3;R7ABV$N4X78@-(B | 2-f | Spray Drying Particle Image Analysis Particle Morphology | 12/20 10:55:48 |
particle separation (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
606 | $BN.DL<0M6EE1KF0AuCV$K$h$k1UCf$N@d1oBNN3;R$HF3BNN3;R$NJ,N%(B | 4-b | particle separation dielectrophoresis silica particle | 12/22 13:38:56 |
particle size (4$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 2-f (2$B7o(B), 12-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
508 | $B%$%s%i%$%s$G$N%8%'%C%H%_%kJ4:U%W%m%;%9$NN3;R7B%b%K%?%j%s%0(B | 2-f | Particle size Inline Measurement | 12/22 09:25:19 |
689 | $B%7%j%+%-%;%m%2%k$rMQ$$$?%U%'%i%$%H<'@-N3;R$N9g@.(B | 12-c | silica xerogel ferrite particle particle size | 12/22 16:45:37 |
700 | $B%3%s%T%e!<%?%7%_%e%l!<%7%g%s$K4p$E$/N3EY@)8f%P%C%A>=@O(B | 12-g | Crystallization Particle size Simulation | 12/22 17:10:13 |
822 | $BEE5$1KF00\F0EY$NN3;R7B0MB8@-$KBP$9$kEE2r | 2-f | electrophoretic mobility particle size applied voltage | 12/22 21:01:00 |
Particle size control (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B SP-8 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
207 | $B%9%W%l!<%I%i%$%d$C$F$J$K!)(B | SP-8 | Spray Dryer Atomization Particle size control | 12/19 11:42:24 |
Particle size distribution (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
204 | $B>WFM!&9gBN%b%G%k$K$h$k>=@ON3;R$NN37BJ,I[M=B,(B | 4-g | Particle size distribution Precipitation CFD | 12/19 11:26:21 |
226 | $BM6EEN($K$h$kHyN3;RJ#9g:`NACf%U%#%i!<$NN3;R7BJ,I[?d;;(B | 2-f | Dispersion state permittivity particle size distribution | 12/19 16:12:55 |
particulate materials (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 2-f (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
143 | $BN3;R>uJ* | 2-f | particulate materials measurement of dielectric constant light scattering method | 12/15 12:04:07 |
particulate structure (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-h (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
722 | $B5e7AHyN3;R9=B$BN$N05=LJQ7A$N?tCM%7%_%e%l!<%7%g%s(B | 12-h | numerical simulation compression particulate structure | 12/22 17:38:05 |
passivation (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B K-2 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
85 | [$B>7BT9V1i(B] Cat-CVD$B5;=Q$N7k>=%7%j%3%sB@M[EECS1~MQ(B | K-2 | catalytic chemical vapor deposition crystalline Si solar cell passivation | 12/11 18:33:53 |
pasteurization effect (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-i (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
352 | $B9b@:EYN.BN@)8fK!$K$h$k0BDj2= | 13-i | the Aqueous of Stabilization Hypochlorous Acid pasteurization effect deodorization effect | 12/21 11:22:58 |
pattern culture (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
450 | $B%$%s%/%8%'%C%H%W%j%s%?$rMQ$$$??@7P:YK&%Q%?!<%sG]M\K!$N3+H/(B | 7-e | neuroscience pattern culture printer | 12/21 18:21:08 |
PC-SAFT (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
373 | CO2+Methanol$B7O9b055$1UJ?9U%b%G%k$H(BBinary cycle$B$X$N1~MQ8!F$(B | 9-d | Binary cycle PC-SAFT Simulation | 12/21 12:53:33 |
PEALD (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B K-2 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
217 | [$B0MMj9V1i(B] $BMFNL7k9g7?(BRF$BJ|EE$rMQ$$$?%W%i%:%^(BALD$B$K$h$k(BTiO2$BKl$N7A@.(B | K-2 | TiO2 PEALD deposition | 12/19 14:48:20 |
PECVD (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-h (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
243 | Fabrication of Ag-TiO2 nanocomposite films via one-step gas-phase deposition and their characterizations after heat treatment processes | 5-h | PECVD PVD photocatalytic activity | 12/19 20:25:14 |
396 | [$B0MMj9V1i(B] $B%W%i%:%^(BCVD$B$rMQ$$$?%(%"%m%>%k%W%m%;%9$K$h$k%+!<%\%s%J%N%A%e!<%V$NI=LLHoJ$(B | K-2 | PECVD carbon nanotube dry coating process | 12/21 14:42:40 |
PEDOT (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
804 | $BEE2r=E9gK!$H%$%s%/K!$K$h$k(BPEDOT/Bi2Te3$B%J%N%W%l!<%HGvKl$N:n@=$HG.EEJ*@-I>2A(B | 9-e | Bi2Te3 nanoplate PEDOT thermoelectric | 12/22 20:09:55 |
PEG lipid (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-j (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
575 | $BFsK\:?;i | 12-j | PEG lipid liposome cell membrane | 12/22 11:58:44 |
PEGylation (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-c (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
522 | $B%$%*%s8r49%/%m%^%H%0%i%U%#!<$N%*%j%4(BDNA$BJ];}MO=P5sF0$K5Z$\$9(BPEG$B=$>~$N1F6A(B | 7-c | Ion exchange chromatography PEGylation oligoDNA | 12/22 10:24:07 |
Peptide (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-c (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
605 | $B:YK&$NEE5$2=3XB,Dj$K8~$1$?%Z%W%A%I:YK&3&LL@_7W(B | 7-a | peptide graphene cell | 12/22 13:36:29 |
612 | $BHy@8J*7k9g%Z%W%A%I$r=$>~$7$?%]%"%;%s%5$K$*$1$k%$%*%sEEN.$N1~Ez2r@O(B | 7-c | Peptide Pore Sensor Escherichia coli | 12/22 13:57:33 |
peptide amphiphiles (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-i (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
110 | $BJ#?t$N%I%a%$%s9=B$$rM-$9$kN>?FG^@-%Z%W%A%I=89gBN$NAO@=(B | 7-i | self-assembly peptide amphiphiles multi-domain | 12/13 11:46:06 |
peptide array (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B HC-16 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
418 | $BGzH/J*8!=P$K8~$1$?93BNM3Mh$NJ,;RG'<1%Z%W%A%I$NC5:w(B | 7-c | antibody mimetic peptide probe explosive sensor peptide array | 12/21 16:00:32 |
792 | [$B=w@->^(B] $B%Z%W%A%I%"%l%$$K$h$k93BN7k9g%Z%W%A%I$NC5:w(B | HC-16 | Antibody Peptide array Peptide beacon | 12/22 19:34:22 |
Peptide beacon (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B HC-16 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
792 | [$B=w@->^(B] $B%Z%W%A%I%"%l%$$K$h$k93BN7k9g%Z%W%A%I$NC5:w(B | HC-16 | Antibody Peptide array Peptide beacon | 12/22 19:34:22 |
perfluorohexane (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 1-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
483 | 2$B@.J,$N%U%CAGCV49C:2=?eAG(B+$B%"%k%3!<%k(B3$B@.J,7O$N(B298.15 K$B$K$*$1$k1U1UJ?9U(B | 1-a | LLE ternary mixture perfluorohexane | 12/21 21:27:43 |
performance monitoring (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B SP-8 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
56 | $B8=>l8~$1%R!<%H%P%i%s%9%=%j%e!<%7%g%s(B | SP-8 | enthalpy heat balance performance monitoring | 12/8 17:02:21 |
Permeability and roughness (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 2-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
311 | Numerical investigation for the effect of turbulent structure in a channel flow with permeable rough wall on drag reduction | 2-a | Permeability and roughness Direct numerical simulation Drag reduction | 12/20 17:51:28 |
permeation (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
785 | $B@8BNJ,;RG'<1%2!<%HKl$N9b46EY2=!&HFMQ2=$K4X$9$k8!F$(B | 7-e | permeation click reaction avidin-biotin binding | 12/22 19:17:30 |
Permeation test (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B F-2 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
323 | [$B0MMj9V1i(B] $B$U$CAG | F-2 | Fluororesin lining Permeation test micro crack | 12/20 23:32:39 |
permittivity (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 2-f (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
226 | $BM6EEN($K$h$kHyN3;RJ#9g:`NACf%U%#%i!<$NN3;R7BJ,I[?d;;(B | 2-f | Dispersion state permittivity particle size distribution | 12/19 16:12:55 |
permselectivity (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
528 | ZSM-5$BKl$NKl9=B$$,F)2aJ,N%FC@-$K5Z$\$91F6A(B | 4-a | zeolite membrane permselectivity membrane structure | 12/22 10:54:04 |
perovskite (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
91 | $B%Z%m%V%9%+%$%HB@M[EECS$N9b8zN(2=$X8~$1$?8w5[<}AX$N7k>=N37B@)8f$HEECSFC@-$X$N1F6A(B | 12-a | perovskite solar cell crystallization | 12/12 14:25:44 |
170 | $BAX>u%Z%m%V%9%+%$%H7?;@2=J*$N9=B$BP>N@-!&;@AG7gB;NL$H%W%m%H%sEAF3N($H$N4X78(B | 9-e | Solid oxide fuel cell Electrolyte perovskite | 12/16 16:07:52 |
perovskite oxides (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-c (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
662 | Enhancement of oxygen release in perovskite-oxides supported CuO oxygen carriers in chemical looping with oxygen uncoupling for solid fuels combustion | 9-c | chemical looping oxygen uncoupling perovskite oxides CuO | 12/22 15:52:58 |
perovskite solar cells (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-h (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
754 | $BB@M[EECSMQ%Z%m%V%9%+%$%H7?GvKl$NEII[@.Kl2aDx$N2r@O(B | 12-h | spin coating precipitation phenomena perovskite solar cells | 12/22 18:18:09 |
persistence time scale (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-l (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
507 | $B%7%c%C%U%j%s%02hA|=hM}$K$h$k9bB.N.F0BN$N<+8JAj4X;}B3;~4V$NGDB*K!(B | 12-l | persistence time scale morphology autocorrelation inter-vision random sorting | 12/22 09:13:38 |
Pervaporation (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (2$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
192 | AlPO-18 $BKl$N@=Kl$HF)2aJ*@-(B | 4-a | AlPO-18 membrane Gas permeation Pervaporation | 12/18 15:43:37 |
285 | RHO$B%<%*%i%$%HKl$N@=Kl$HF)2aJ*@-(B($B-6(B) | 4-a | RHO zeolite membrane Pervaporation Gas permeation | 12/20 15:04:52 |
pH (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-c (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
663 | Zn$B7OAX>u?e;@2=6bB01v$N9=B$JQ2=$,5Z$\$9(BpH$B4K>WG=$X$N1F6A(B | 12-c | Simonkolleite pH structure | 12/22 16:00:07 |
pH-responsive (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
289 | Preparation of pH-Responsive Chitin Microparticles Based on Emulsification Method | 7-i | Chitin microparticle emulsification pH-responsive | 12/20 15:29:55 |
439 | pH$B1~Ez@-%^%F%j%"%k$NAjJ,N%5sF0$K4X$9$k7W;;2=3XE*2r@O(B | 4-a | LCST molecular dynamics pH-responsive | 12/21 17:26:01 |
Pharmaceutical compounds (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
621 | $BNW3&2aK0OBHf$K$h$k0eLtIJ$N7k>=2=FqEY$NI>2A(B | 12-g | Crystallization difficulty Critical Supersaturation Pharmaceutical compounds | 12/22 14:24:51 |
Pharmaceuticals (6$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 6-b (5$B7o(B), 2-f (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
199 | $B%7%s%0%k%f!<%9!&%^%k%A%f!<%95;=Q$NA*Br$r9MN8$7$?Cm | 6-b | Pharmaceuticals Risk evaluation Decision-making | 12/19 10:41:03 |
200 | $B0eLtIJ@=B$$K$*$1$k2a;@2=?eAG$rMQ$$$?=|@w%W%m%;%9$N@_7W | 6-b | Pharmaceuticals Process design Sterile drug product manufacturing | 12/19 10:41:32 |
201 | $B0eLtIJ>{:^@=B$%W%m%;%9$K$*$1$k%P%C%A!&O"B35;=Q$N@=IJIJ | 2-f | Pharmaceuticals Granulation Continuous manufacturing | 12/19 10:45:31 |
308 | Application of computational fluid dynamics for equipment redesign in sterile manufacturing of biopharmaceuticals | 6-b | Pharmaceuticals Quality CFD | 12/20 17:10:43 |
339 | $B0eLtIJ!&:F@80eNE@=IJ$N@=B$$K$*$1$k%b%G%k%Y!<%9%H@_7W$NLr3d(B | 6-b | Pharmaceuticals Regenerative medicine Process design | 12/21 10:33:12 |
343 | $B0eLtIJ@=:^@=B$%W%m%;%9$K$*$1$k%^%F%j%"%k%m%9Dc8: | 6-b | Pharmaceuticals Batch manufacturing Loss reduction | 12/21 10:43:54 |
Phase transfer catalyst (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-f (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
571 | $B1U;0Aj7O%^%$%/%m%j%"%/%?!<$rMQ$$$?0BB)9a;@%U%'%K%k@8@.H?1~$X$N?(G^G;=LAj$N1F6A(B | 5-f | Microreactor Phase transfer catalyst Mass transfer | 12/22 11:56:28 |
Phase behavior (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 1-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
412 | $BFs;@2=C:AG(B/$B%7%j%3%s%"%k%3%-%7%I(B/$B%]%j%^!<;0@.J,7O$NAj5sF0$HL)EY(B | 1-a | Phase behavior Volumetric properties Polymer | 12/21 15:51:13 |
phase change material (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
146 | $B%J%N6u4V$KJD$89~$a$i$l$?AjJQ2=J* | 4-e | phase change material heat of adsorption porous material | 12/15 12:25:48 |
Phase equilibria (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 8-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
237 | CO2$BEIAu$K$*$1$k%]%j%^!<@O=P5sF0$NMO2rEY%Q%i%a!<%?$K4p$E$/9M;!(B | 8-b | CO2 painting CO2 solubility Phase equilibria | 12/19 19:22:38 |
phase equilibrium (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 1-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
147 | CDSAP$B%b%G%k$K$*$1$kJ,;RI=LL@Q%Q%i%a!<%?$N=$@5$*$h$SAjJ?9U$N7W;;(B | 1-a | phase equilibrium activity coefficient model coordination number | 12/15 12:29:05 |
phase field method (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
865 | $BG.M65/AjJ,N%K!$K$h$k9bJ,;RKlI=LL9=B$7A@.2aDx$N8!F$(B | 4-a | thermally induced phase separation polymer membrane phase field method | 12/23 00:04:05 |
Phase separation (4$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 3-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
150 | In-situ$B>.3Q(BX$B@~;6MpB,Dj$rMQ$$$?HsMOG^M65/AjJ,N%$N8&5f(B | 4-a | phase separation NIPS SAXS | 12/15 14:33:12 |
317 | Numerical simulation of the effect of liquid-liquid phase separation on the convective heat exchange in a microchannel | 3-b | phase separation convective heat transfer numerical simulation | 12/20 19:00:56 |
484 | $B2<8BNW3&MO1U29EY7?$N%"%_%s!2$B5[<}$K4X$9$k8&5f(B | 4-d | CO2 capture Hydrophobic hydration Phase separation | 12/21 21:35:31 |
581 | $B%*%$%j%s%0%"%&%H8=>]$r7PM3$9$k7O$G$N7k>=2=$N2r@O(B | 12-g | Crystallization Oiling-out Phase separation | 12/22 12:19:18 |
phase transition (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-i (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
102 | $B1U>=AjE>0\NN0h$NEAGE2aDx$ND>@\B,Dj(B | 12-i | phase transition soft matter dynamics | 12/12 18:09:06 |
Phenol (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B HQ-21 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
840 | $B?e!?M-5!MOG^$rMQ$$$?%P%$%*%^%9@.J,J,N%$H2DMO2=%j%0%K%s$+$i$NM-MQ2=3XJ* | HQ-21 | Lignin Phenol Water/1-butanol mixed-solvent | 12/22 22:31:54 |
phenolic derivatives (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
149 | $B%7%j%+%i%$%H$rMQ$$$?%U%'%N!<%kN`$N1UAj5[CeJ,N%(B | 4-e | silicalite phenolic derivatives kinetic separation | 12/15 14:30:11 |
phenolic resin (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B SP-9 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
73 | $B%U%'%N!<%k | SP-9 | phenolic resin continuous process dehydration | 12/8 18:53:32 |
phosphonic acid (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-h (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
711 | $B6bB0I=LL>e$N%[%9%[%s;@5[CeAX$,%?%s%Q%/ | 7-h | protein adsorption phosphonic acid surface potential | 12/22 17:28:53 |
Phosphoric Acid Fuel Cell (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B HC-16 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
872 | [$B0MMj9V1i(B] $BIY;NEE5!$K$*$1$kG3NAEECS$N3+H/>u67$K$D$$$F(B | HC-16 | Phosphoric Acid Fuel Cell Solid Oxide Fuel Cell | 12/26 16:01:36 |
phosphorus (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
295 | $B7y5$@->C2=Ae$X$N%"%k%+%jEZN`1v$NE:2C>r7o2<$K$*$1$kMO2r@-%$%*%s$NF0E*JQ2=(B | 13-a | Inorganic substance phosphorus simulation | 12/20 16:12:47 |
Phosphorus Recovering (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
841 | $B%V%J%7%a%8GQ6]>23%$+$i$N%j%s2s<}(B | 13-e | Bunasimeji Culture Waste Phosphorus Recovering | 12/22 22:34:35 |
Photocatalysis (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-k (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
867 | Atomically dispersed Pd co-catalysts on TiO2 for solar photocatalytic NO removal | 12-k | Flame spray pyrolysis Photocatalysis Single PGM atom catalysts | 12/23 08:59:25 |
photocatalyst (7$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-a (3$B7o(B), 12-i (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
104 | Fe/TiO2$B8w?(G^$N(BCO2$B4T85@-G=8~>e$N$?$a$N(BFe$BC4;}>r7o$*$h$S4T85:^$N8!F$(B | 5-c | Photocatalyst CO2 Reduction Performance Reductants | 12/12 19:56:46 |
287 | $BFqJ,2r@-J* | 5-a | photocatalyst water purification electrical energy per order | 12/20 15:17:55 |
304 | 1,4$B%8%*%-%5%sJ,2r$K$*$1$k8w?(G^?e>t2=5;=Q$N@-G=Z(B | 13-a | photocatalyst 1,4-dioxane advanced oxidation process | 12/20 16:56:06 |
334 | $BN.F0>28w?(G^%j%"%/%?!<$N@-G=M=B,%7%_%e%l!<%?$N3+H/!!(B-$B8w?(G^%j%"%/%?!<$N9b8zN(2=$K4X$9$k8&5f(B- | 5-a | Photocatalyst Reactor Numerical simulation | 12/21 10:07:48 |
487 | $B%a%?%s$r4T85:^$H$7$??e>x5$$N8wJ,2rH?1~$K$*$1$k(BNi/TiO2$B$N3h@-Nt2=MW0x$N8!F$(B | 5-a | Photocatalyst Photodecomposition of Steam Hydrogen Production | 12/21 22:14:13 |
718 | TiO2$B8w?(G^I=LL$N%+!<%\%sC10lAX=$>~$K$h$k9b3h@-2=$*$h$SI=LLHoFG$NM^@)(B | 12-d | photocatalyst water purification surface deactivation | 12/22 17:34:17 |
735 | $BM[6K;@2=%A%?%K%"%J%N%A%e!<%V$rMQ$$$?8w?(G^%^%$%/%m%j%"%/%?!<(B | 12-i | TiO2 nanotube photocatalyst microreactor | 12/22 17:57:17 |
photocatalytic activity (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-h (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
243 | Fabrication of Ag-TiO2 nanocomposite films via one-step gas-phase deposition and their characterizations after heat treatment processes | 5-h | PECVD PVD photocatalytic activity | 12/19 20:25:14 |
Photodecomposition (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-c (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
448 | $B;g30@~$H2a;@2=?eAG$rJ;MQ$7$?%[%k%`%"%k%G%R%IJ,2r%W%m%;%9$N3+H/(B | 5-c | Formaldehyde Hydrogen peroxide Photodecomposition | 12/21 17:59:49 |
Photodecomposition of Steam (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
487 | $B%a%?%s$r4T85:^$H$7$??e>x5$$N8wJ,2rH?1~$K$*$1$k(BNi/TiO2$B$N3h@-Nt2=MW0x$N8!F$(B | 5-a | Photocatalyst Photodecomposition of Steam Hydrogen Production | 12/21 22:14:13 |
photoluminescence (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 8-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
236 | $BN.DL<0H?1~4o$rMQ$$$?H/8w%J%N%+!<%\%s$N?eG.O"B39g@.(B | 8-e | hydrothermal synthesis carbon dots photoluminescence | 12/19 19:00:27 |
photopolymerization (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
11 | UV$B9E2=7?(B3D$B%W%j%s%?!<(B:CLIP$B$NB$7A%7%_%e%l!<%7%g%s(B | 12-a | 3D printer photopolymerization simulation | 11/29 10:26:29 |
photothermal conversion device (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
859 | $B8wG.JQ49%G%P%$%9$+$iH/A[$9$k8w1~Ez7?9ZAG3h@-2=%G%6%$%s(B | 7-g | inorganic nanoparticle photothermal conversion device enzyme | 12/22 23:49:52 |
Physical Degradation (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
389 | $BMF4oJqAu%j%5%$%/%k | 13-e | Polymer Recycle Physical Degradation Physical Regeneration | 12/21 14:21:14 |
Physical Regeneration (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
389 | $BMF4oJqAu%j%5%$%/%k | 13-e | Polymer Recycle Physical Degradation Physical Regeneration | 12/21 14:21:14 |