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1 sugar and byproducts severely affect sucrose manufacturing.
2 ste CO(2) and to reduce pollution in polymer manufacturing.
3 complex activities, such as apparel or paper manufacturing.
4 The syntheses are amenable to large scale manufacturing.
5 ent semiconductor foundry protocols for chip manufacturing.
6 ed nanomaterial discovery, optimization, and manufacturing.
7 ns are expanding rapidly enabled by scalable manufacturing.
8 on prototypes that are realized via additive manufacturing.
9 render this reaction amenable to tonne-scale manufacturing.
10 waste and improve sustainability in polymer manufacturing.
11 to processing of nanomaterials and advanced manufacturing.
12 of surfactants and the complexity of device manufacturing.
13 for large-scale, automated cellular therapy manufacturing.
14 broad utility of these catalysts in additive manufacturing.
15 an example of selective single-domain device manufacturing.
16 sectors like aviation, heavy transport, and manufacturing.
17 means of an electric-field-assisted additive manufacturing.
18 osensors with the possibility of large-scale manufacturing.
19 ight the role of nanotechnology and advanced manufacturing.
20 significant role in the field of laser aided manufacturing.
21 id dynamics, mechanical design drafting, and manufacturing.
22 me scaling exponent for other sectors as for manufacturing.
23 /Cas9 disruption of GM-CSF during CAR-T cell manufacturing.
24 in solid-state devices and simplify scalable manufacturing.
25 re becoming increasingly prevalent in modern manufacturing.
26 is to improve the sustainability of chemical manufacturing.
27 g/storage to tissue engineering and additive manufacturing.
28 in pharmaceutical research, development, and manufacturing.
29 nt) steel tailor-designed for laser additive manufacturing.
30 adequately explore its potential is textile manufacturing.
31 ompounds relevant in food chemistry and food manufacturing.
32 lation, analytical modelling, additive layer manufacturing (3D printing) and experimental testing are
35 cal carbon dioxide (Sc-CO(2)) technology for manufacturing a "smart" biomaterial scaffold, which reta
36 noic acid (PFOA) was used as a fluoropolymer manufacturing aid at a fluoropolymer production facility
37 nsolidation of the ceramic grains during the manufacturing also promoted fragmentation of the ceramic
39 d by laser powder bed fusion (LPBF) additive manufacturing (AM) are being reported at a rapid rate, t
44 iers identified on the demanding path toward manufacturing and adoption of tissue and organ replaceme
45 materials degradation, hindering large-scale manufacturing and applications of sulfide-based solid-st
47 use calls for further advances in materials, manufacturing and characterization paradigms, and design
48 ssing PfLSA1 and PfLSAP2 will now proceed to manufacturing and clinical assessment under good manufac
50 ntration is low, which add complexity to the manufacturing and compromises the printing resolution.
51 on path that is synergistic between additive manufacturing and dispersion strengthening, possibly ena
52 ant targets for increasing in vitro platelet manufacturing and for managing quantitative platelet dis
53 Despite using additional energy for machine manufacturing and fuel consumption, the mechanized pract
56 sential in the development of strategies for manufacturing and maximizing the efficiency of pharmaceu
57 chemicals that are added to plastics during manufacturing and may leach out once they reach the envi
60 ther drug carrier systems, including ease of manufacturing and scale-up to industrial level, higher d
62 eby report for the first time on the design, manufacturing and testing of a three-dimensional (3D) ne
63 of this material is instead scrapped during manufacturing and the remainder during fabrication of fi
64 eramic scaffolds were fabricated by additive manufacturing and then modified for pore-wall reinforcem
66 second part of this article, key chemistry, manufacturing, and controls (CMC) information is provide
68 te element modeling, fabricated via additive manufacturing, and mechanically tested to determine the
70 printing (3DP) has transformed engineering, manufacturing, and the use of advanced materials due to
72 ced by thermal drawing process, which is the manufacturing approach used in optical fiber fabrication
75 cturing methods like multi-material additive manufacturing are enabling realization of multiscale mat
76 ale surface features, which are artifacts of manufacturing, are shown to influence the morphology of
77 stalex meets the main standards required for manufacturing artificial heart valves and has superior m
78 ors (EHMRs), widely used in construction and manufacturing, as an alternative to N95 respirators duri
79 ver, logistical complexity and high costs of manufacturing autologous viral products limit CAR T cell
80 a manufacturable structure, and (3) Digital manufacturing-automated manufacture of the compiled stru
82 tial not only for biopharmaceutical and food manufacturing but also for the understanding of diseases
84 utions with Aroclors in most foods and found manufacturing byproduct PCBs, including PCB11, in tilapi
85 developed CRISPR adaptation-mediated library manufacturing (CALM), which turns bacterial cells into "
87 lymphoblastic leukemia blasts during CART19 manufacturing can lead to CAR19+ leukemic cells (CARB19)
89 control MPF formation throughout the textile manufacturing chain by using cutting methods which minim
91 e provide novel information on the impact of manufacturing changes on clinical outcomes and report on
93 er bed fusion (LPBF) is a method of additive manufacturing characterized by the rapid scanning of a h
95 lications were initially rejected because of manufacturing concerns (four of 36 [11%] with the EMA, s
97 rcialized tools, with integrated device mass manufacturing cost still not at a competitive level for
102 g decreased bioefficacy of unused LLINs with manufacturing dates between 2013 and 2019 collected from
103 In contrast, all (100%, n = 25) LLINs with manufacturing dates prior to 2013 are meeting these bioe
107 sence of motor vehicle traffic and suspended manufacturing during the coronavirus disease 2019 (COVID
109 gen display platforms and have launched cGMP manufacturing efforts to advance the SARS-CoV-2-RBD nano
110 rapy, but the cost and rigor associated with manufacturing engineered T cells ex vivo can be prohibit
111 o protein subunit vaccines, there is limited manufacturing expertise for these nucleic-acid-based mod
113 into the Cape Fear River by a fluorochemical manufacturing facility were detected in blood samples fr
114 of index cases.Conclusions: Evaluation of a manufacturing facility with a cluster of workers with re
115 s part of a public health investigation of a manufacturing facility, we performed a cross-sectional s
117 of the apheresis product improved CAR T-cell manufacturing feasibility as well as heightened inflamma
118 rfaces, while considered a key to design and manufacturing for future applications, has hitherto been
119 icates a way forward for exploiting additive-manufacturing for realising polymer-based acoustic metam
120 sure virtually the same scaling exponent for manufacturing for the 1993 to 2015 period as for the 197
122 t occur during the various stages of textile manufacturing: from fiber extrusion to assembly of the f
123 ntaminants (due to the use of dry air as the manufacturing gas of the ozone generator) affected the o
124 l substrates, demonstrating the potential of manufacturing geometrically versatile devices based on n
125 opment processes to support the alignment of manufacturing, global policy, and program implementation
127 analysis of Antibody-Drug Conjugate Payload manufacturing has revealed that the majority of the cost
128 elieve that bio-inspired design and additive manufacturing have been, and will continue to be, import
129 timize the processing parameters of additive manufacturing have shown that it is difficult to alter t
131 MA strategy has significant implications for manufacturing high-performance fibrous platforms to meet
133 ign regions in China are concentrated in key manufacturing hubs, including the Yangtze River Delta, P
134 roposed designs, to determine the effects of manufacturing imperfections and to optimise the performa
136 ogeochemical cycles, play important roles in manufacturing industries and biomedical research, and in
143 ing due to complex electronics requirements, manufacturing limitations, and the increase in viscous d
144 n toxicity caused by upstream extraction and manufacturing linked to technologies such as solar panel
145 mounts of matter, for harvesting energy, for manufacturing materials and for sensing chemical and bio
148 aser lithography, an emerging micro-additive manufacturing method with unique geometric capabilities
150 generators (TEGs) fabricated using additive manufacturing methods are attractive because they offer
151 Conventional antibody-drug conjugate (ADC) manufacturing methods are based on the nonselective bioc
154 led 3D mesostructures serve as the basis for manufacturing methods that can bypass limitations of con
156 ustrial processes, facilitate new industrial manufacturing methods, and improve biocompatibility in b
160 t fascinate humanity, inspiring an unceasing manufacturing of a kaleidoscopic variety of dyes and pig
161 actices such as sandblasting denim jeans and manufacturing of artificial stone benchtops has led to r
162 in terms of bioprinting technologies for the manufacturing of cellular constructs with particular emp
163 3D printing can allow for the efficient manufacturing of elaborate structures difficult to reali
167 ns using LLZO which may guide the design and manufacturing of high energy density solid-state batteri
168 is approach a promising route for the facile manufacturing of high-performance electrodes at large in
169 offers a viable strategy for the continuous manufacturing of hollow HEA nanomaterials that can find
170 of bioinks have been developed, allowing the manufacturing of in vitro models and implants tested pre
171 rning method provides a new way for additive manufacturing of integrated optoelectronic devices using
172 Additionally, efforts to develop sustainable manufacturing of lithium ion batteries are still lacking
174 egacy chemicals used in firefighting and the manufacturing of many industrial and consumer goods, are
175 and multilayered structures, and integrated manufacturing of materials for coupled mechanical and fu
176 igh temperature alloy melts is important for manufacturing of metallic components but extremely chall
178 here pave the way for the versatile additive manufacturing of molecular ferroelectric metamaterials.
181 utomated fast-flow instrument for the direct manufacturing of peptide chains up to 164 amino acids lo
182 duction attributes and is currently used for manufacturing of several therapeutic proteins and viral
183 applications include material processing and manufacturing of small and large engineering components
187 pendent electrical signal input, the present manufacturing of the array limited the number of effecti
190 on is prolific as a result of the widespread manufacturing of these compounds and their chemical pers
191 gration unlocks the potential of large-scale manufacturing of these integrated systems with low cost
192 s of processing - pasteurization and yoghurt manufacturing - on some health-promoting lipidome compon
194 where often molten wax is used; in additive manufacturing or metal-production processes; or in extre
195 th the potential to transform medical device manufacturing, organ replacement, and the treatment of d
196 academia; contract research, development and manufacturing organizations; and the pharmaceutical indu
199 sin-based cleavage reaction is necessary for manufacturing peptides using rDNA technology with tandem
201 emical variability can present challenges to manufacturing personalized cancer vaccines in an optimal
202 ucose to fructose is a critical step towards manufacturing petroleum-free chemicals from lignocellulo
207 d MSCs) is produced using an optimized, good manufacturing practice (GMP)-compliant manufacturing pro
208 Following in vitro expansion using a good manufacturing practice-compliant methodology (designed t
210 d to develop a simple, fully automated, good-manufacturing-practice (GMP)-compliant production proced
211 lf-life of (64)Cu would also facilitate good-manufacturing-practice production and distribution to si
212 erview of this complex field of current good manufacturing practices (cGMP) based on biopharmaceutica
213 blood or leukapheresis, expanded under good manufacturing practices (GMP) conditions, and administer
215 dose of a cell-based, reverse-genetics, Good Manufacturing Practices-produced wild-type influenza A(H
216 al co-delivery of miR-18a and NEO100, a good manufacturing practices-quality form of perillyl alcohol
217 ntrinsic materials solution, without complex manufacturing procedure or much increased fabrication co
218 cteristics that must be monitored during the manufacturing process and subsequent quality control ass
219 t and reliable monitoring of PTMs during the manufacturing process for both bioreactor control or as
220 aquinone were determined at each step of the manufacturing process for green and black tea using gas
222 of whisky and the impact of each step in the manufacturing process provides a basis for responding to
223 f parameters in the formulation composition, manufacturing process, and characterization of micropart
224 mitigate protein degradation during the drug manufacturing process, storage, and transportation.
234 The composition of the formulation and the manufacturing processes determine the essential property
235 is challenging the dominance of conventional manufacturing processes for products with high complexit
237 ize 3D printers, in this case large additive manufacturing processes using acrylonitrile-butadiene-st
240 orm further evaluation of product design and manufacturing processes, including quantification of met
241 rogels and hydrophobic elastomers-in various manufacturing processes-with strong, stretchable, and tr
247 ce our modifications do not impose intricate manufacturing, require long post-processing, nor sacrifi
251 nsport, and materials, a 50-52% reduction in manufacturing, services, and buildings, and a 39% reduct
252 P receiving wastewater from a pharmaceutical manufacturing site, (i) 10 times as many potential indus
254 ncluding, its chemical composition, rigorous manufacturing standards, and ability to target and trans
255 alyzed to study the effect of aging time and manufacturing steps (filtration, addition of additives o
257 and ongoing technical challenges related to manufacturing, storage, transport, and external noninvas
259 es of these undercut MNAs and the associated manufacturing strategy, which is compatible with diverse
265 The aim of this study is to describe the manufacturing technique and to assess the preliminary re
266 st time to expand the capability of additive manufacturing technique for creating components with bro
267 l, this work establishes a scalable additive manufacturing technique that enables the integration of
268 3D printing technology has become a mature manufacturing technique, widely used for its advantages
271 of the design and integration strategies and manufacturing techniques for such sensing systems is giv
272 Three-dimensional bioprinting uses additive manufacturing techniques for the automated fabrication o
274 nowires are beyond the capability of current manufacturing techniques, which impose limitations on th
275 materials are in demand for modern additive manufacturing techniques, while preliminary tests have a
280 al biosensors constructed with semiconductor manufacturing technology (SMT)-produced electrodes and a
286 printing, and the large build space provides manufacturing throughput, while FFF offers a great selec
287 and modified by either bottom-up or top-down manufacturing to enable different functions for water fi
288 ithography is currently entering high-volume manufacturing to enable the continued miniaturization of
289 microstructure, paving the way for additive manufacturing to repair, restore, and reshape any supera
291 we show the potential for "Li-free" battery manufacturing using the Li(7)La(3)Zr(2)O(12) (LLZO) elec
297 fect of these minority phases was avoided by manufacturing, with the help of focused-ion-beam, a mum-
298 hanically-strong biomaterial combined during manufacturing would replace injectable defect fillers (c
299 t metal 3D printers promise to revolutionize manufacturing, yet they have not reached optimal operati
300 apita, recycling rate, product lifespan, and manufacturing yield) in a dynamic material flow analysis