$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
---|---|---|---|---|---|
$BIt2q%;%C%7%g%s(B SE-16. <$B:`NA!&3&LLF$O@2q!V:`NAAO@=$H3&LL@)8f$N:GA0@~!W!J8}F,H/I=ItLg!K(B> $B$3$N%;%C%7%g%s$N9V1i;~4V$O(B $BH/I=#1#2J,!\F$O@#8J,(B $B$G$9!#(B | |||||
(9:00$B!A(B10:20) ($B:BD9(B $B?{(B $B7C;L!&;3Fb(B $B5*;R(B) | |||||
Q101 | $B0eNE2hA|?GCGMQ(BGd$B2=9gJ*C4;}(BAu/SiO2$BN3;R$N3+H/(B | Gd component Au nanoparticle | SE-16 | 46 | |
Q102 | DNA-mediated shape shift of nanoparticle superstructures for biomedical applications | Nanoparticle imaging Drug delivery system | SE-16 | 369 | |
Q103 | $BE`7k4%AgA`:n$rMxMQ$7$??eJ,;6(BMg-Al$B7OJ#?e;@2=J*%J%N%7!<%H$N:F9=C[(B | nanosheet layered double hydroxide freeze-drying | SE-16 | 65 | |
Q104 | $B8:054%Ag2<$G$N%3%m%$%@%k%U%!%$%P!<<+H/7A@.%a%+%K%:%`(B | colloidal fibers drying phase separation | SE-16 | 565 | |
(10:40$B!A(B11:20) ($B;J2q(B $BD9Hx(B $BBgJe(B) | |||||
Q106 | [$B>7BT9V1i(B] $B9bJ,2r8w3X82Hy6@$G8+$kI97k>=$NI=LLM;2r(B | Surface melting, ice optical microscopy | SE-16 | 13 | |
(11:20$B!A(B12:00) ($B;J2q(B $B | |||||
Q108 | [$B>7BT9V1i(B] $B9)3X$K;D$5$l$?Bg$-$JJ,Ln(B:$B$-$o$a$FD94|4V$K$o$?$k0BA43NJ]$,5a$a$i$l$kGQ4~J*$N8e;OKv!=9b%l%Y%kJ| | process at material interface clay minerals high-level waste | SE-16 | 16 | |
(13:00$B!A(B14:00) ($B:BD9(B $BB@ED(B $B@?0l(B) | |||||
Q113 | $BDc29>r7o2<$K$*$1$k%"%k%_%JGvKl:n@=K!$N3+H/(B | alumina film low-temperature | SE-16 | 47 | |
Q114 | ZnO$B%J%N%3%s%]%8%C%HF)L@Kl$X$NM6EE@-%J%NN3;RE:2C$K$h$k7V8wA}6/8z2L(B | nanocomposite fluorescence dielectric | SE-16 | 311 | |
Q115 | $B%b%j%V%G%s;@%+%k%7%&%`%J%NN3;R9g@.$HH/8wFC@-(B | Phosphor nanoparticle hydrothermal synthesis | SE-16 | 436 | |
(14:00$B!A(B15:00) ($B:BD9(B $B;0Ln(B $BBY;V(B) | |||||
Q116 | $BCf4V6K@-H?1~MOG^$NMxMQ$K$h$kI=LLAB?e2=2aDxCf$G$N%J%NN3;R$NJ,;60BDj@-(B | dispersion stability intermediate polarity surface hydrophobization | SE-16 | 390 | |
Q117 | $B%S!<%:%_%k$K$h$k9bJ,;6%]%j%^!<%3!<%F%#%s%0%7%j%+%U%#%i!<$ND4@=(B | Silica filler Polymer coating Disintegration | SE-16 | 795 | |
Q118 | $B7+$jJV$7J,;6!&J, | carbon nanotubes dispersion and printing quality-quantity tradeoff | SE-16 | 679 | |
(15:00$B!A(B16:00) ($B:BD9(B $BD90f(B $B7=<#(B) | |||||
Q119 | $BL}E)$NKl:Y9&F)2a$K4X$9$k?tCM%7%_%e%l!<%7%g%s(B | Lattice Boltzmann method Two-phase flow membrane permeation | SE-16 | 727 | |
Q120 | $B%^%$%/%m%U%k%$%G%#%/%9$HKl5;=Q$rM;9g$7$?%@%V%k%(%^%k%7%g%sD4@=K!$N3+H/(B | microfluidics membrane emulsion | SE-16 | 765 | |
Q121 | $B%7%j%3!<%sL}E)$H%]%j%^! | golf ball-like particle silicon oil droplets heterocoagulation | SE-16 | 467 | |
(16:00$B!A(B17:00) ($B:BD9(B $BLZKs(B $B8w@5(B) | |||||
Q122 | PMMA$BCr7?$K$h$k%U%'%N!<%k | carbon hard template physical activation | SE-16 | 39 | |
Q123 | $BCb2=C:AG8w?(G^$r4pHW$H$9$kB@M[8w2a;@2=?eAG9g@.(B | photocatalysis hydrogen peroxide sunlight | SE-16 | 229 | |
Q124 | $B<+A38wMxMQ7?0lJ}8~%U%m!<$K$h$kM-5!8w?(G^Kl$N@QAX%j%"%/%?!<(B | water purification photocatalyst flow system | SE-16 | 331 |