$B2,Eg(B $B$$$E$_!J@E2,Bg3X!K!&@nyu(B $B?50lO/!J;:6H5;=QAm9g8&5f=j!K!&:4F#(B $B9d;K!J1'ET5\Bg3X!K!&=)7n!!?.!JEl5~Bg3X!K!&NS!!N\H~;R!JL>8E20Bg3X!K(B |
$BK\%7%s%]%8%&%`$G$O!"0!NW3&!&D6NW3&N.BN$NJ*@-$J$I$N4pAC$+$i!"0!NW3&!&D6NW3&N.BN$N4D6-!"%(%M%k%.!^$r
$B:G=*99?7F|;~!'(B2021-02-07 15:20:01
$B$3$NJ,N`$G$h$/;H$o$l(B $B$F$$$k%-!<%o!<%I(B | $B%-!<%o!<%I(B | $B | |
---|---|---|---|
Supercritical carbon dioxide | 6$B7o(B | ||
Lithium Ion Battery | 2$B7o(B | ||
Supercritical CO2 | 2$B7o(B | ||
Extraction | 2$B7o(B | ||
high-temperature and high-pressure water | 2$B7o(B | ||
BaTiO3 | 1$B7o(B |
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BH/I=7A<0(B | |
---|---|---|---|
28 | [$B8&5f>)Ne>^(B] $BD6NW3&Fs;@2=C:AG$rMOG^$H$7$?9bB.O"B3Cj=PJ,N%5;=Q$N3+H/(B | The SCEJ Award for Outstanding Young Researcher | O |
38 | CAPC$BK!$K$h$kB?AX%U%#%k%?!<$N:n@=(B | carbon dioxide polymer filter | O |
90 | $BD6NW3&Fs;@2=C:AG$rMQ$$$?;HMQ:Q$_%j%A%&%`%$%*%sEECS$+$i6bB0$NCj=P(B | Supercritical carbon dioxide extraction metal recovery | O |
168 | $B9b052<$K$*$1$k(B2$B@.J,7OG.EAF3N($N6I=jAH@.%b%G%k$K$h$kAj4X(B | High-Pressure Thermal Conductivity Local Composition Model | O |
176 | $B?eG.=hM}$K$h$kBg7?AtN`$+$i$N%P%$%*%*%$%k@8@.(B | marine biomass bio-oil subcritical water | O |
178 | [$B>7BT9V1i(B] $BD6NW3&(BCO2$B%5%$%/%k2PNOH/EEMQ%,%9%?!<%S%s$N3+H/(B | Gas turbine Combustor Super Critical CO2 cycle | O |
179 | [$BE8K>9V1i(B] $B%O%$%I%m%+!<%\%N%_%/%9!!3F | Hydrocarbonomics Petroleomics heavy oil | O |
180 | [$BE8K>9V1i(B] $BC:AG=[4DMxMQ$K4X$o$kH?1~4o@_7W$K8~$1$?N.F0!&EAG.!&H?1~%7%_%e%l!<%7%g%s(B | Computational fluid dynamics carbon cycle reaction engineering | O |
212 | $BD6NW3&Fs;@2=C:AG(B-$B6&MOG^$K$h$k%$%A%4MU$+$i$N93;@2=@-@.J,Cj=P$K$*$1$k:GE,>r7o$N8!F$(B | Supercritical Carbon dioxide Extraction Strawberry leaf | O |
263 | $BD6NW3&Fs;@2=C:AG$rMQ$$$?8~N.Cj=PK!$K$h$k;HMQ:Q$_%j%A%&%`%$%*%sEECS$+$i$N6bB02s<}(B | lithium ion battery supercritical carbon dioxide recycle | O |
273 | Effect of supercritical CO2 drying condition on properties of porous carbon nanofiber electrode and Li-O2 battery performance. | Supercritical CO2 drying Carbon nanofiber electrode Li-O2 battery | O |
287 | $B%5%$%:!&J,I[$N@)8f$K8~$1$?FsCJ%U%m! | Hydrothermal synthesis cerium oxide dual-stage flow reactor | O |
326 | $BD6NW3&Fs;@2=C:AG$rMQ$$$?L$@.=O4;5L2LHi$+$i$N@:L}Cj=P$K$*$1$k4^?eN($N1F6A(B | supercritical carbon dioxide essential oil water contents | O |
332 | $BI=LL=$>~J#9g;@2=J*%J%N;@AG%-%c%j%"$ND6NW3&?eG.9g@.(B | surface modified nanoparticle mixed oxide nanoparticle oxygen carrier | O |
338 | $BD6NW3&M-5!=$>~$K$h$k;@2=E4%J%NN3;R$N%5%$%:!&O*=PLL@)8f$H$=$N;@AGCyB"G=(B | nanoparticle supercritical hydrothermal facet-control | O |
376 | $B9b299b05?eCf$G$N%"%_%I2=9gJ*$N2C?eJ,2r$HC&?e=L9g(B | amide compound high-temperature and high-pressure water hydrolysis and dehydration | O |
377 | $B8GBN;@?(G^$rMQ$$$??eG.>r7o2<$G$N%k%A%s2C?eJ,2r(B | Solid acid catalysts Hydrolysis Microwave | O |
392 | $BD6NW3&N.BN%/%m%^%HK!$K$*$1$kJ];}78?t$NMO2rEY%Q%i%a!<%?$rMQ$$$?Aj4X%b%G%k(B | supercritical fluid chromatography entropy-based solubility parameter solubility parameter | O |
397 | $BN.DL<0D6NW3&?eG.9g@.K!$K$h$k6bB0%I!<%W%;%j%"%J%NN3;R$N9g@.$K$*$1$k%I!<%Q%s%H$N5sF0(B | Supercritical nanoparticles doping | O |
434 | $B9b299b05?eCf$G$N%i%8%+%k=E9g$H2C?eJ,2r$K$h$k%]%j%S%K%k%"%k%3!<%k9g@.(B | high-temperature and high-pressure water polyvinyl alcohol radical polymerization | O |
436 | $BCf@-;R$G8+$k?eG.H?1~MF4oFbIt(B | Neutron imaging, Super critical water | O |
485 | Subcritical Water Extraction of Beta-glucans from Ganoderma lucidum Spore | Subcritical Water Extraction Ganoderma lucidum spore Beta-glucans | O |
492 | $B9b055$1UAjJ,N%>r7o2<$G$ND6NW3&(BCO2$B$rMQ$$$?8~N.@\?(Cj=P$K$h$k@V;gAI%(%-%9Cf@.J,$NO"B3@:N1(B | Phase equilibria counter-current extraction supercritical fluid extraction | O |
526 | $BNdG^7O%,%9(B/CO2$B:.9g7O$rMxMQ$7$?%J%N%;%k%i!<@=B$%W%m%;%9$N8!F$(B | Nanocellular Refrigerant gas CO2 | O |
568 | $BD6NW3&:.9gMOG^$rMQ$$$?(BBaTiO3$B$N9=B$7A@.$H%J%N%5%$%:2=(B | Supercritical mixed solvent BaTiO3 Nucleation and growth | O |
584 | $BD6NW3&(BCO2$BJ70O5$2<$K$*$1$k%a%=%]!<%i%9%7%j%+$X$N(BVOC$B5[CeJ?9U$NDjNLE*GD0.(B | supercritical carbon dioxide mesoporous silica adsorption | O |
611 | $BMOG^E:2C$7$?D6NW3&(BCO2$B$K$h$k936]:^J,;R7k>=$N(BCO2$B6nF07?AjE>0\(B | supercritical CO2 antibacterial molecular crystal CO2-driven phase transition | O |
620 | $BHy:YAtN`Cj=P;D^V$+$i$NM-2AJ*2s<}$K8~$1$?9b299b05?e$N1~MQ(B | Hot compressed water Microalgae Extraction residue | O |
678 | $B9b05Fs;@2=C:AG!&?e$K$*$1$kD62;GH$ND>@\>H | liposome high pressure CO2 ultra sonication | O |
743 | $B%(%9%F%k8r49H?1~$r%b%G%kH?1~$H$7$?D6NW3&%a%?%N!<%kCf$N8GBN1v4p?(G^H?1~$NB.EYO@(B | Supercritical methanol Solid base catalysts Kinetic analysis | O |
770 | $BD6NW3&(BCO2$B$rMQ$$$?J.L84%AgK!$K$h$k%+%U%'%$%sHyN3;RAO@=$KBP$9$k9b05MOBND4@=>r7o$N1F6A(B | Spray drying Supercritical CO2 Micronization | O |
811 | CO2$B$rMQ$$$?D6NW3&MOBN5^B.KDD%K!$K$h$k%0%j%;%*%U%k%S%s$N%"%b%k%U%!%9HyN3;RAO@=(B | RESS Griseofulvin Amorphous microparticles | O |
857 | $B9b299b05?e$KBP$9$k%P%$%*%^%9M3Mh2=9gJ*$NMO2rEY?d;;(B | Biomass Solubility Machine learning | O |
878 | CIR$BK!$rMQ$$$?9b29NN0h$K$*$1$kD6NW3&Fs;@2=C:AGCf$N(BPlatinum($B-6(B)acetylacetonate$B$N3H;678?t$NB,Dj(B | Diffusion coefficient Supercritical carbon dioxide Pt(acac)2 | O |
897 | [$BM%=(O@J8>^(B] $B%/%(%s;@$rMQ$$$?%3%P%k%H;@%j%A%&%`$N?eG.;@?;=P$K$*$1$kB.EYO@2r@O(B | Hydrothermal Leaching Lithium Ion Battery Citric Acid | O |