Mesoporous silica nanoparticles (MSNs) have great potential for applications as a drug delivery system (DDS) due to their unique properties such as large pore size, high surface area, biocompatibility, biodegradability, and stable aqueous dispersion. The MSN-mediated DDS can carry chemotherapeutic agents, optical sensors, photothermal agents, short interfering RNA (siRNA), and gene therapeutic agents. The MSN-assisted imaging techniques are applicable in cancer diagnosis. However, their synthesis via a chemical route requires toxic chemicals and is challenging, time-consuming, and energy-intensive, making the process expensive and non-viable. Fortunately, nature has provided a viable alternative material in the form of biosilica from marine...
Diatoms are the most abundant resource of biosilica on Earth. These microalgae are encased in a 3-D ...
Diatoms are the most abundant resource of biosilica on Earth. These microalgae are encased in a 3-D ...
Diatoms are unicellular photosynthetic algae enclosed in porous 3D nanopatterned silica enclosures c...
Diatom microalgae are the most outstanding natural source of porous silica. The diatom cell is enclo...
Diatom microalgae are the most outstanding natural source of porous silica. The diatom cell is enclo...
Diatom microalgae are the most outstanding natural source of porous silica. The diatom cell is enclo...
In the past decade, mesoporous silica nanoparticles (MSNs) with a large surface area and pore volume...
In the past decade, mesoporous silica nanoparticles (MSNs) with a large surface area and pore volum...
In the past decade, mesoporous silica nanoparticles (MSNs) with a large surface area and pore volum...
The ability to selectively kill cancerous cell populations while leaving healthy cells unaffected is...
The ability to selectively kill cancerous cell populations while leaving healthy cells unaffected is...
The ability to selectively kill cancerous cell populations while leaving healthy cells unaffected is...
Drug delivery using synthetic nanoparticles including porous silicon has been extensively used to ov...
Diatoms are the most abundant resource of biosilica on Earth. These microalgae are encased in a 3-D ...
Diatoms are the most abundant resource of biosilica on Earth. These microalgae are encased in a 3-D ...
Diatoms are the most abundant resource of biosilica on Earth. These microalgae are encased in a 3-D ...
Diatoms are the most abundant resource of biosilica on Earth. These microalgae are encased in a 3-D ...
Diatoms are unicellular photosynthetic algae enclosed in porous 3D nanopatterned silica enclosures c...
Diatom microalgae are the most outstanding natural source of porous silica. The diatom cell is enclo...
Diatom microalgae are the most outstanding natural source of porous silica. The diatom cell is enclo...
Diatom microalgae are the most outstanding natural source of porous silica. The diatom cell is enclo...
In the past decade, mesoporous silica nanoparticles (MSNs) with a large surface area and pore volume...
In the past decade, mesoporous silica nanoparticles (MSNs) with a large surface area and pore volum...
In the past decade, mesoporous silica nanoparticles (MSNs) with a large surface area and pore volum...
The ability to selectively kill cancerous cell populations while leaving healthy cells unaffected is...
The ability to selectively kill cancerous cell populations while leaving healthy cells unaffected is...
The ability to selectively kill cancerous cell populations while leaving healthy cells unaffected is...
Drug delivery using synthetic nanoparticles including porous silicon has been extensively used to ov...
Diatoms are the most abundant resource of biosilica on Earth. These microalgae are encased in a 3-D ...
Diatoms are the most abundant resource of biosilica on Earth. These microalgae are encased in a 3-D ...
Diatoms are the most abundant resource of biosilica on Earth. These microalgae are encased in a 3-D ...
Diatoms are the most abundant resource of biosilica on Earth. These microalgae are encased in a 3-D ...
Diatoms are unicellular photosynthetic algae enclosed in porous 3D nanopatterned silica enclosures c...