HIGH-BRIGHTNESS FLUOROPHORES BY COVALENT FUNCTIONALIZATION
An example compound according to an example of the present disclosure includes, among other possible things, a nanotube carrier, a moiety, a linker having first and second functional groups, wherein the first functional group is covalently linked to the nanotube carrier, and the second functional group is covalently linked to the moiety. An example method of making a nanotube compound according to the present disclosure is also disclosed.
1 . A compound, comprising:
a nanotube carrier;
a moiety; and
a linker having first and second functional groups, wherein the first functional group is covalently linked to the nanotube carrier, and the second functional group is covalently linked to the moiety.
2 . The compound of claim 1 , wherein the nanotube carrier is a boron nitride nanotube (BNNT).
3 . The compound of claim 2 , wherein the boron nitride nanotube has a length between about 100 and 2000 nm.
4 . The compound of claim 1 , wherein the nanotube carrier is a carbon nanotube (CNT).
5 . The compound of claim 1 , wherein the nanotube carrier is a multi-walled nanotube carrier.
6 . The compound of claim 1 , further comprising a plurality of linkers covalently linked to the nanotube carrier, and a plurality of moieties, wherein each linker is linked to a moiety of the plurality of moieties.
7 . The compound of claim 1 , wherein the nanotube carrier has at least one polar group, and wherein the first functional group is covalently linked to the nanotube carrier at the at least one polar group.
8 . The compound of claim 7 , wherein the at least one polar group is a hydroxyl (—OH) group.
9 . The compound of claim 1 , wherein the moiety includes at least one of one of a fluorescent entity, a biological molecule, a chelating agent, and combinations thereof.
10 . The compound of claim 1 , wherein the linker is a first linker, and further comprising a second linker having third and fourth functional groups, wherein the second linker is covalently linked to the first linker via covalent interaction between the second and third functional groups, and the moiety is covalently linked to the fourth functional group.
11 . A method of making a nanotube compound, comprising:
mechanically processing nanotubes in polar liquid, whereby the mechanical processing create imperfections on the nanotube and provides polar groups at the imperfections; and
covalently linking a linker to the nanotubes, the linker having first and second functional groups, wherein the first functional group covalently links to the polar group.
12 . The method of claim 11 , wherein the mechanical processing results in cutting the nanotubes.
13 . The method of claim 12 , wherein the nanotubes have lengths between about 100 and 2000 nm after the mechanical processing.
14 . The method of claim 11 , wherein the moiety is a fluorescent entity.
15 . The method of claim 11 , wherein the mechanically processing includes agitation.
16 . The method of claim 15 , wherein the agitation is accomplished by sonication or by homogenizer.
17 . The method of claim 11 , wherein the polar groups are hydroxyl (—OH) groups.
18 . The method of claim 11 , wherein the nanotubes are boron nitride nanotubes (BNNTs).
19 . The method of claim 11 , wherein the nanotubes are carbon nanotubes (CNT).
20 . The method of claim 11 , wherein the nanotubes are multi-walled nanotubes.